1 //===- ELFDumper.cpp - ELF-specific dumper --------------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 /// 10 /// \file 11 /// \brief This file implements the ELF-specific dumper for llvm-readobj. 12 /// 13 //===----------------------------------------------------------------------===// 14 15 #include "ARMEHABIPrinter.h" 16 #include "Error.h" 17 #include "ObjDumper.h" 18 #include "StackMapPrinter.h" 19 #include "llvm-readobj.h" 20 #include "llvm/ADT/ArrayRef.h" 21 #include "llvm/ADT/DenseMap.h" 22 #include "llvm/ADT/Optional.h" 23 #include "llvm/ADT/PointerIntPair.h" 24 #include "llvm/ADT/SmallString.h" 25 #include "llvm/ADT/SmallVector.h" 26 #include "llvm/ADT/STLExtras.h" 27 #include "llvm/ADT/StringExtras.h" 28 #include "llvm/ADT/StringRef.h" 29 #include "llvm/ADT/Twine.h" 30 #include "llvm/BinaryFormat/ELF.h" 31 #include "llvm/Object/ELF.h" 32 #include "llvm/Object/ELFObjectFile.h" 33 #include "llvm/Object/ELFTypes.h" 34 #include "llvm/Object/Error.h" 35 #include "llvm/Object/ObjectFile.h" 36 #include "llvm/Object/StackMapParser.h" 37 #include "llvm/Support/AMDGPUMetadata.h" 38 #include "llvm/Support/ARMAttributeParser.h" 39 #include "llvm/Support/ARMBuildAttributes.h" 40 #include "llvm/Support/Casting.h" 41 #include "llvm/Support/Compiler.h" 42 #include "llvm/Support/Endian.h" 43 #include "llvm/Support/ErrorHandling.h" 44 #include "llvm/Support/Format.h" 45 #include "llvm/Support/FormattedStream.h" 46 #include "llvm/Support/MathExtras.h" 47 #include "llvm/Support/MipsABIFlags.h" 48 #include "llvm/Support/ScopedPrinter.h" 49 #include "llvm/Support/raw_ostream.h" 50 #include <algorithm> 51 #include <cinttypes> 52 #include <cstddef> 53 #include <cstdint> 54 #include <cstdlib> 55 #include <iterator> 56 #include <memory> 57 #include <string> 58 #include <system_error> 59 #include <vector> 60 61 using namespace llvm; 62 using namespace llvm::object; 63 using namespace ELF; 64 65 #define LLVM_READOBJ_ENUM_CASE(ns, enum) \ 66 case ns::enum: return #enum; 67 68 #define ENUM_ENT(enum, altName) \ 69 { #enum, altName, ELF::enum } 70 71 #define ENUM_ENT_1(enum) \ 72 { #enum, #enum, ELF::enum } 73 74 #define LLVM_READOBJ_PHDR_ENUM(ns, enum) \ 75 case ns::enum: \ 76 return std::string(#enum).substr(3); 77 78 #define TYPEDEF_ELF_TYPES(ELFT) \ 79 using ELFO = ELFFile<ELFT>; \ 80 using Elf_Shdr = typename ELFO::Elf_Shdr; \ 81 using Elf_Sym = typename ELFO::Elf_Sym; \ 82 using Elf_Dyn = typename ELFO::Elf_Dyn; \ 83 using Elf_Dyn_Range = typename ELFO::Elf_Dyn_Range; \ 84 using Elf_Rel = typename ELFO::Elf_Rel; \ 85 using Elf_Rela = typename ELFO::Elf_Rela; \ 86 using Elf_Rel_Range = typename ELFO::Elf_Rel_Range; \ 87 using Elf_Rela_Range = typename ELFO::Elf_Rela_Range; \ 88 using Elf_Phdr = typename ELFO::Elf_Phdr; \ 89 using Elf_Half = typename ELFO::Elf_Half; \ 90 using Elf_Ehdr = typename ELFO::Elf_Ehdr; \ 91 using Elf_Word = typename ELFO::Elf_Word; \ 92 using Elf_Hash = typename ELFO::Elf_Hash; \ 93 using Elf_GnuHash = typename ELFO::Elf_GnuHash; \ 94 using Elf_Sym_Range = typename ELFO::Elf_Sym_Range; \ 95 using Elf_Versym = typename ELFO::Elf_Versym; \ 96 using Elf_Verneed = typename ELFO::Elf_Verneed; \ 97 using Elf_Vernaux = typename ELFO::Elf_Vernaux; \ 98 using Elf_Verdef = typename ELFO::Elf_Verdef; \ 99 using Elf_Verdaux = typename ELFO::Elf_Verdaux; \ 100 using uintX_t = typename ELFO::uintX_t; 101 102 namespace { 103 104 template <class ELFT> class DumpStyle; 105 106 /// Represents a contiguous uniform range in the file. We cannot just create a 107 /// range directly because when creating one of these from the .dynamic table 108 /// the size, entity size and virtual address are different entries in arbitrary 109 /// order (DT_REL, DT_RELSZ, DT_RELENT for example). 110 struct DynRegionInfo { 111 DynRegionInfo() = default; 112 DynRegionInfo(const void *A, uint64_t S, uint64_t ES) 113 : Addr(A), Size(S), EntSize(ES) {} 114 115 /// \brief Address in current address space. 116 const void *Addr = nullptr; 117 /// \brief Size in bytes of the region. 118 uint64_t Size = 0; 119 /// \brief Size of each entity in the region. 120 uint64_t EntSize = 0; 121 122 template <typename Type> ArrayRef<Type> getAsArrayRef() const { 123 const Type *Start = reinterpret_cast<const Type *>(Addr); 124 if (!Start) 125 return {Start, Start}; 126 if (EntSize != sizeof(Type) || Size % EntSize) 127 reportError("Invalid entity size"); 128 return {Start, Start + (Size / EntSize)}; 129 } 130 }; 131 132 template<typename ELFT> 133 class ELFDumper : public ObjDumper { 134 public: 135 ELFDumper(const ELFFile<ELFT> *Obj, ScopedPrinter &Writer); 136 137 void printFileHeaders() override; 138 void printSections() override; 139 void printRelocations() override; 140 void printDynamicRelocations() override; 141 void printSymbols() override; 142 void printDynamicSymbols() override; 143 void printUnwindInfo() override; 144 145 void printDynamicTable() override; 146 void printNeededLibraries() override; 147 void printProgramHeaders() override; 148 void printHashTable() override; 149 void printGnuHashTable() override; 150 void printLoadName() override; 151 void printVersionInfo() override; 152 void printGroupSections() override; 153 154 void printAttributes() override; 155 void printMipsPLTGOT() override; 156 void printMipsABIFlags() override; 157 void printMipsReginfo() override; 158 void printMipsOptions() override; 159 160 void printStackMap() const override; 161 162 void printHashHistogram() override; 163 164 void printNotes() override; 165 166 private: 167 std::unique_ptr<DumpStyle<ELFT>> ELFDumperStyle; 168 169 TYPEDEF_ELF_TYPES(ELFT) 170 171 DynRegionInfo checkDRI(DynRegionInfo DRI) { 172 if (DRI.Addr < Obj->base() || 173 (const uint8_t *)DRI.Addr + DRI.Size > Obj->base() + Obj->getBufSize()) 174 error(llvm::object::object_error::parse_failed); 175 return DRI; 176 } 177 178 DynRegionInfo createDRIFrom(const Elf_Phdr *P, uintX_t EntSize) { 179 return checkDRI({Obj->base() + P->p_offset, P->p_filesz, EntSize}); 180 } 181 182 DynRegionInfo createDRIFrom(const Elf_Shdr *S) { 183 return checkDRI({Obj->base() + S->sh_offset, S->sh_size, S->sh_entsize}); 184 } 185 186 void parseDynamicTable(ArrayRef<const Elf_Phdr *> LoadSegments); 187 188 void printValue(uint64_t Type, uint64_t Value); 189 190 StringRef getDynamicString(uint64_t Offset) const; 191 StringRef getSymbolVersion(StringRef StrTab, const Elf_Sym *symb, 192 bool &IsDefault) const; 193 void LoadVersionMap() const; 194 void LoadVersionNeeds(const Elf_Shdr *ec) const; 195 void LoadVersionDefs(const Elf_Shdr *sec) const; 196 197 const ELFO *Obj; 198 DynRegionInfo DynRelRegion; 199 DynRegionInfo DynRelaRegion; 200 DynRegionInfo DynPLTRelRegion; 201 DynRegionInfo DynSymRegion; 202 DynRegionInfo DynamicTable; 203 StringRef DynamicStringTable; 204 StringRef SOName; 205 const Elf_Hash *HashTable = nullptr; 206 const Elf_GnuHash *GnuHashTable = nullptr; 207 const Elf_Shdr *DotSymtabSec = nullptr; 208 StringRef DynSymtabName; 209 ArrayRef<Elf_Word> ShndxTable; 210 211 const Elf_Shdr *dot_gnu_version_sec = nullptr; // .gnu.version 212 const Elf_Shdr *dot_gnu_version_r_sec = nullptr; // .gnu.version_r 213 const Elf_Shdr *dot_gnu_version_d_sec = nullptr; // .gnu.version_d 214 215 // Records for each version index the corresponding Verdef or Vernaux entry. 216 // This is filled the first time LoadVersionMap() is called. 217 class VersionMapEntry : public PointerIntPair<const void *, 1> { 218 public: 219 // If the integer is 0, this is an Elf_Verdef*. 220 // If the integer is 1, this is an Elf_Vernaux*. 221 VersionMapEntry() : PointerIntPair<const void *, 1>(nullptr, 0) {} 222 VersionMapEntry(const Elf_Verdef *verdef) 223 : PointerIntPair<const void *, 1>(verdef, 0) {} 224 VersionMapEntry(const Elf_Vernaux *vernaux) 225 : PointerIntPair<const void *, 1>(vernaux, 1) {} 226 227 bool isNull() const { return getPointer() == nullptr; } 228 bool isVerdef() const { return !isNull() && getInt() == 0; } 229 bool isVernaux() const { return !isNull() && getInt() == 1; } 230 const Elf_Verdef *getVerdef() const { 231 return isVerdef() ? (const Elf_Verdef *)getPointer() : nullptr; 232 } 233 const Elf_Vernaux *getVernaux() const { 234 return isVernaux() ? (const Elf_Vernaux *)getPointer() : nullptr; 235 } 236 }; 237 mutable SmallVector<VersionMapEntry, 16> VersionMap; 238 239 public: 240 Elf_Dyn_Range dynamic_table() const { 241 return DynamicTable.getAsArrayRef<Elf_Dyn>(); 242 } 243 244 Elf_Sym_Range dynamic_symbols() const { 245 return DynSymRegion.getAsArrayRef<Elf_Sym>(); 246 } 247 248 Elf_Rel_Range dyn_rels() const; 249 Elf_Rela_Range dyn_relas() const; 250 std::string getFullSymbolName(const Elf_Sym *Symbol, StringRef StrTable, 251 bool IsDynamic) const; 252 253 void printSymbolsHelper(bool IsDynamic) const; 254 const Elf_Shdr *getDotSymtabSec() const { return DotSymtabSec; } 255 ArrayRef<Elf_Word> getShndxTable() const { return ShndxTable; } 256 StringRef getDynamicStringTable() const { return DynamicStringTable; } 257 const DynRegionInfo &getDynRelRegion() const { return DynRelRegion; } 258 const DynRegionInfo &getDynRelaRegion() const { return DynRelaRegion; } 259 const DynRegionInfo &getDynPLTRelRegion() const { return DynPLTRelRegion; } 260 const Elf_Hash *getHashTable() const { return HashTable; } 261 const Elf_GnuHash *getGnuHashTable() const { return GnuHashTable; } 262 }; 263 264 template <class ELFT> 265 void ELFDumper<ELFT>::printSymbolsHelper(bool IsDynamic) const { 266 StringRef StrTable, SymtabName; 267 size_t Entries = 0; 268 Elf_Sym_Range Syms(nullptr, nullptr); 269 if (IsDynamic) { 270 StrTable = DynamicStringTable; 271 Syms = dynamic_symbols(); 272 SymtabName = DynSymtabName; 273 if (DynSymRegion.Addr) 274 Entries = DynSymRegion.Size / DynSymRegion.EntSize; 275 } else { 276 if (!DotSymtabSec) 277 return; 278 StrTable = unwrapOrError(Obj->getStringTableForSymtab(*DotSymtabSec)); 279 Syms = unwrapOrError(Obj->symbols(DotSymtabSec)); 280 SymtabName = unwrapOrError(Obj->getSectionName(DotSymtabSec)); 281 Entries = DotSymtabSec->getEntityCount(); 282 } 283 if (Syms.begin() == Syms.end()) 284 return; 285 ELFDumperStyle->printSymtabMessage(Obj, SymtabName, Entries); 286 for (const auto &Sym : Syms) 287 ELFDumperStyle->printSymbol(Obj, &Sym, Syms.begin(), StrTable, IsDynamic); 288 } 289 290 template <typename ELFT> class DumpStyle { 291 public: 292 using Elf_Shdr = typename ELFFile<ELFT>::Elf_Shdr; 293 using Elf_Sym = typename ELFFile<ELFT>::Elf_Sym; 294 295 DumpStyle(ELFDumper<ELFT> *Dumper) : Dumper(Dumper) {} 296 virtual ~DumpStyle() = default; 297 298 virtual void printFileHeaders(const ELFFile<ELFT> *Obj) = 0; 299 virtual void printGroupSections(const ELFFile<ELFT> *Obj) = 0; 300 virtual void printRelocations(const ELFFile<ELFT> *Obj) = 0; 301 virtual void printSections(const ELFFile<ELFT> *Obj) = 0; 302 virtual void printSymbols(const ELFFile<ELFT> *Obj) = 0; 303 virtual void printDynamicSymbols(const ELFFile<ELFT> *Obj) = 0; 304 virtual void printDynamicRelocations(const ELFFile<ELFT> *Obj) = 0; 305 virtual void printSymtabMessage(const ELFFile<ELFT> *obj, StringRef Name, 306 size_t Offset) {} 307 virtual void printSymbol(const ELFFile<ELFT> *Obj, const Elf_Sym *Symbol, 308 const Elf_Sym *FirstSym, StringRef StrTable, 309 bool IsDynamic) = 0; 310 virtual void printProgramHeaders(const ELFFile<ELFT> *Obj) = 0; 311 virtual void printHashHistogram(const ELFFile<ELFT> *Obj) = 0; 312 virtual void printNotes(const ELFFile<ELFT> *Obj) = 0; 313 const ELFDumper<ELFT> *dumper() const { return Dumper; } 314 315 private: 316 const ELFDumper<ELFT> *Dumper; 317 }; 318 319 template <typename ELFT> class GNUStyle : public DumpStyle<ELFT> { 320 formatted_raw_ostream OS; 321 322 public: 323 TYPEDEF_ELF_TYPES(ELFT) 324 325 GNUStyle(ScopedPrinter &W, ELFDumper<ELFT> *Dumper) 326 : DumpStyle<ELFT>(Dumper), OS(W.getOStream()) {} 327 328 void printFileHeaders(const ELFO *Obj) override; 329 void printGroupSections(const ELFFile<ELFT> *Obj) override; 330 void printRelocations(const ELFO *Obj) override; 331 void printSections(const ELFO *Obj) override; 332 void printSymbols(const ELFO *Obj) override; 333 void printDynamicSymbols(const ELFO *Obj) override; 334 void printDynamicRelocations(const ELFO *Obj) override; 335 void printSymtabMessage(const ELFO *Obj, StringRef Name, 336 size_t Offset) override; 337 void printProgramHeaders(const ELFO *Obj) override; 338 void printHashHistogram(const ELFFile<ELFT> *Obj) override; 339 void printNotes(const ELFFile<ELFT> *Obj) override; 340 341 private: 342 struct Field { 343 StringRef Str; 344 unsigned Column; 345 346 Field(StringRef S, unsigned Col) : Str(S), Column(Col) {} 347 Field(unsigned Col) : Str(""), Column(Col) {} 348 }; 349 350 template <typename T, typename TEnum> 351 std::string printEnum(T Value, ArrayRef<EnumEntry<TEnum>> EnumValues) { 352 for (const auto &EnumItem : EnumValues) 353 if (EnumItem.Value == Value) 354 return EnumItem.AltName; 355 return to_hexString(Value, false); 356 } 357 358 formatted_raw_ostream &printField(struct Field F) { 359 if (F.Column != 0) 360 OS.PadToColumn(F.Column); 361 OS << F.Str; 362 OS.flush(); 363 return OS; 364 } 365 void printHashedSymbol(const ELFO *Obj, const Elf_Sym *FirstSym, uint32_t Sym, 366 StringRef StrTable, uint32_t Bucket); 367 void printRelocation(const ELFO *Obj, const Elf_Shdr *SymTab, 368 const Elf_Rela &R, bool IsRela); 369 void printSymbol(const ELFO *Obj, const Elf_Sym *Symbol, const Elf_Sym *First, 370 StringRef StrTable, bool IsDynamic) override; 371 std::string getSymbolSectionNdx(const ELFO *Obj, const Elf_Sym *Symbol, 372 const Elf_Sym *FirstSym); 373 void printDynamicRelocation(const ELFO *Obj, Elf_Rela R, bool IsRela); 374 bool checkTLSSections(const Elf_Phdr &Phdr, const Elf_Shdr &Sec); 375 bool checkoffsets(const Elf_Phdr &Phdr, const Elf_Shdr &Sec); 376 bool checkVMA(const Elf_Phdr &Phdr, const Elf_Shdr &Sec); 377 bool checkPTDynamic(const Elf_Phdr &Phdr, const Elf_Shdr &Sec); 378 }; 379 380 template <typename ELFT> class LLVMStyle : public DumpStyle<ELFT> { 381 public: 382 TYPEDEF_ELF_TYPES(ELFT) 383 384 LLVMStyle(ScopedPrinter &W, ELFDumper<ELFT> *Dumper) 385 : DumpStyle<ELFT>(Dumper), W(W) {} 386 387 void printFileHeaders(const ELFO *Obj) override; 388 void printGroupSections(const ELFFile<ELFT> *Obj) override; 389 void printRelocations(const ELFO *Obj) override; 390 void printRelocations(const Elf_Shdr *Sec, const ELFO *Obj); 391 void printSections(const ELFO *Obj) override; 392 void printSymbols(const ELFO *Obj) override; 393 void printDynamicSymbols(const ELFO *Obj) override; 394 void printDynamicRelocations(const ELFO *Obj) override; 395 void printProgramHeaders(const ELFO *Obj) override; 396 void printHashHistogram(const ELFFile<ELFT> *Obj) override; 397 void printNotes(const ELFFile<ELFT> *Obj) override; 398 399 private: 400 void printRelocation(const ELFO *Obj, Elf_Rela Rel, const Elf_Shdr *SymTab); 401 void printDynamicRelocation(const ELFO *Obj, Elf_Rela Rel); 402 void printSymbol(const ELFO *Obj, const Elf_Sym *Symbol, const Elf_Sym *First, 403 StringRef StrTable, bool IsDynamic) override; 404 405 ScopedPrinter &W; 406 }; 407 408 } // end anonymous namespace 409 410 namespace llvm { 411 412 template <class ELFT> 413 static std::error_code createELFDumper(const ELFFile<ELFT> *Obj, 414 ScopedPrinter &Writer, 415 std::unique_ptr<ObjDumper> &Result) { 416 Result.reset(new ELFDumper<ELFT>(Obj, Writer)); 417 return readobj_error::success; 418 } 419 420 std::error_code createELFDumper(const object::ObjectFile *Obj, 421 ScopedPrinter &Writer, 422 std::unique_ptr<ObjDumper> &Result) { 423 // Little-endian 32-bit 424 if (const ELF32LEObjectFile *ELFObj = dyn_cast<ELF32LEObjectFile>(Obj)) 425 return createELFDumper(ELFObj->getELFFile(), Writer, Result); 426 427 // Big-endian 32-bit 428 if (const ELF32BEObjectFile *ELFObj = dyn_cast<ELF32BEObjectFile>(Obj)) 429 return createELFDumper(ELFObj->getELFFile(), Writer, Result); 430 431 // Little-endian 64-bit 432 if (const ELF64LEObjectFile *ELFObj = dyn_cast<ELF64LEObjectFile>(Obj)) 433 return createELFDumper(ELFObj->getELFFile(), Writer, Result); 434 435 // Big-endian 64-bit 436 if (const ELF64BEObjectFile *ELFObj = dyn_cast<ELF64BEObjectFile>(Obj)) 437 return createELFDumper(ELFObj->getELFFile(), Writer, Result); 438 439 return readobj_error::unsupported_obj_file_format; 440 } 441 442 } // end namespace llvm 443 444 // Iterate through the versions needed section, and place each Elf_Vernaux 445 // in the VersionMap according to its index. 446 template <class ELFT> 447 void ELFDumper<ELFT>::LoadVersionNeeds(const Elf_Shdr *sec) const { 448 unsigned vn_size = sec->sh_size; // Size of section in bytes 449 unsigned vn_count = sec->sh_info; // Number of Verneed entries 450 const char *sec_start = (const char *)Obj->base() + sec->sh_offset; 451 const char *sec_end = sec_start + vn_size; 452 // The first Verneed entry is at the start of the section. 453 const char *p = sec_start; 454 for (unsigned i = 0; i < vn_count; i++) { 455 if (p + sizeof(Elf_Verneed) > sec_end) 456 report_fatal_error("Section ended unexpectedly while scanning " 457 "version needed records."); 458 const Elf_Verneed *vn = reinterpret_cast<const Elf_Verneed *>(p); 459 if (vn->vn_version != ELF::VER_NEED_CURRENT) 460 report_fatal_error("Unexpected verneed version"); 461 // Iterate through the Vernaux entries 462 const char *paux = p + vn->vn_aux; 463 for (unsigned j = 0; j < vn->vn_cnt; j++) { 464 if (paux + sizeof(Elf_Vernaux) > sec_end) 465 report_fatal_error("Section ended unexpected while scanning auxiliary " 466 "version needed records."); 467 const Elf_Vernaux *vna = reinterpret_cast<const Elf_Vernaux *>(paux); 468 size_t index = vna->vna_other & ELF::VERSYM_VERSION; 469 if (index >= VersionMap.size()) 470 VersionMap.resize(index + 1); 471 VersionMap[index] = VersionMapEntry(vna); 472 paux += vna->vna_next; 473 } 474 p += vn->vn_next; 475 } 476 } 477 478 // Iterate through the version definitions, and place each Elf_Verdef 479 // in the VersionMap according to its index. 480 template <class ELFT> 481 void ELFDumper<ELFT>::LoadVersionDefs(const Elf_Shdr *sec) const { 482 unsigned vd_size = sec->sh_size; // Size of section in bytes 483 unsigned vd_count = sec->sh_info; // Number of Verdef entries 484 const char *sec_start = (const char *)Obj->base() + sec->sh_offset; 485 const char *sec_end = sec_start + vd_size; 486 // The first Verdef entry is at the start of the section. 487 const char *p = sec_start; 488 for (unsigned i = 0; i < vd_count; i++) { 489 if (p + sizeof(Elf_Verdef) > sec_end) 490 report_fatal_error("Section ended unexpectedly while scanning " 491 "version definitions."); 492 const Elf_Verdef *vd = reinterpret_cast<const Elf_Verdef *>(p); 493 if (vd->vd_version != ELF::VER_DEF_CURRENT) 494 report_fatal_error("Unexpected verdef version"); 495 size_t index = vd->vd_ndx & ELF::VERSYM_VERSION; 496 if (index >= VersionMap.size()) 497 VersionMap.resize(index + 1); 498 VersionMap[index] = VersionMapEntry(vd); 499 p += vd->vd_next; 500 } 501 } 502 503 template <class ELFT> void ELFDumper<ELFT>::LoadVersionMap() const { 504 // If there is no dynamic symtab or version table, there is nothing to do. 505 if (!DynSymRegion.Addr || !dot_gnu_version_sec) 506 return; 507 508 // Has the VersionMap already been loaded? 509 if (VersionMap.size() > 0) 510 return; 511 512 // The first two version indexes are reserved. 513 // Index 0 is LOCAL, index 1 is GLOBAL. 514 VersionMap.push_back(VersionMapEntry()); 515 VersionMap.push_back(VersionMapEntry()); 516 517 if (dot_gnu_version_d_sec) 518 LoadVersionDefs(dot_gnu_version_d_sec); 519 520 if (dot_gnu_version_r_sec) 521 LoadVersionNeeds(dot_gnu_version_r_sec); 522 } 523 524 template <typename ELFO, class ELFT> 525 static void printVersionSymbolSection(ELFDumper<ELFT> *Dumper, const ELFO *Obj, 526 const typename ELFO::Elf_Shdr *Sec, 527 ScopedPrinter &W) { 528 DictScope SS(W, "Version symbols"); 529 if (!Sec) 530 return; 531 StringRef Name = unwrapOrError(Obj->getSectionName(Sec)); 532 W.printNumber("Section Name", Name, Sec->sh_name); 533 W.printHex("Address", Sec->sh_addr); 534 W.printHex("Offset", Sec->sh_offset); 535 W.printNumber("Link", Sec->sh_link); 536 537 const uint8_t *P = (const uint8_t *)Obj->base() + Sec->sh_offset; 538 StringRef StrTable = Dumper->getDynamicStringTable(); 539 540 // Same number of entries in the dynamic symbol table (DT_SYMTAB). 541 ListScope Syms(W, "Symbols"); 542 for (const typename ELFO::Elf_Sym &Sym : Dumper->dynamic_symbols()) { 543 DictScope S(W, "Symbol"); 544 std::string FullSymbolName = 545 Dumper->getFullSymbolName(&Sym, StrTable, true /* IsDynamic */); 546 W.printNumber("Version", *P); 547 W.printString("Name", FullSymbolName); 548 P += sizeof(typename ELFO::Elf_Half); 549 } 550 } 551 552 static const EnumEntry<unsigned> SymVersionFlags[] = { 553 {"Base", "BASE", VER_FLG_BASE}, 554 {"Weak", "WEAK", VER_FLG_WEAK}, 555 {"Info", "INFO", VER_FLG_INFO}}; 556 557 template <typename ELFO, class ELFT> 558 static void printVersionDefinitionSection(ELFDumper<ELFT> *Dumper, 559 const ELFO *Obj, 560 const typename ELFO::Elf_Shdr *Sec, 561 ScopedPrinter &W) { 562 using VerDef = typename ELFO::Elf_Verdef; 563 using VerdAux = typename ELFO::Elf_Verdaux; 564 565 DictScope SD(W, "SHT_GNU_verdef"); 566 if (!Sec) 567 return; 568 569 // The number of entries in the section SHT_GNU_verdef 570 // is determined by DT_VERDEFNUM tag. 571 unsigned VerDefsNum = 0; 572 for (const typename ELFO::Elf_Dyn &Dyn : Dumper->dynamic_table()) { 573 if (Dyn.d_tag == DT_VERDEFNUM) 574 VerDefsNum = Dyn.d_un.d_val; 575 } 576 const uint8_t *SecStartAddress = 577 (const uint8_t *)Obj->base() + Sec->sh_offset; 578 const uint8_t *SecEndAddress = SecStartAddress + Sec->sh_size; 579 const uint8_t *P = SecStartAddress; 580 const typename ELFO::Elf_Shdr *StrTab = 581 unwrapOrError(Obj->getSection(Sec->sh_link)); 582 583 while (VerDefsNum--) { 584 if (P + sizeof(VerDef) > SecEndAddress) 585 report_fatal_error("invalid offset in the section"); 586 587 auto *VD = reinterpret_cast<const VerDef *>(P); 588 DictScope Def(W, "Definition"); 589 W.printNumber("Version", VD->vd_version); 590 W.printEnum("Flags", VD->vd_flags, makeArrayRef(SymVersionFlags)); 591 W.printNumber("Index", VD->vd_ndx); 592 W.printNumber("Hash", VD->vd_hash); 593 W.printString("Name", 594 StringRef((const char *)(Obj->base() + StrTab->sh_offset + 595 VD->getAux()->vda_name))); 596 if (!VD->vd_cnt) 597 report_fatal_error("at least one definition string must exist"); 598 if (VD->vd_cnt > 2) 599 report_fatal_error("more than one predecessor is not expected"); 600 601 if (VD->vd_cnt == 2) { 602 const uint8_t *PAux = P + VD->vd_aux + VD->getAux()->vda_next; 603 const VerdAux *Aux = reinterpret_cast<const VerdAux *>(PAux); 604 W.printString("Predecessor", 605 StringRef((const char *)(Obj->base() + StrTab->sh_offset + 606 Aux->vda_name))); 607 } 608 609 P += VD->vd_next; 610 } 611 } 612 613 template <typename ELFO, class ELFT> 614 static void printVersionDependencySection(ELFDumper<ELFT> *Dumper, 615 const ELFO *Obj, 616 const typename ELFO::Elf_Shdr *Sec, 617 ScopedPrinter &W) { 618 using VerNeed = typename ELFO::Elf_Verneed; 619 using VernAux = typename ELFO::Elf_Vernaux; 620 621 DictScope SD(W, "SHT_GNU_verneed"); 622 if (!Sec) 623 return; 624 625 unsigned VerNeedNum = 0; 626 for (const typename ELFO::Elf_Dyn &Dyn : Dumper->dynamic_table()) 627 if (Dyn.d_tag == DT_VERNEEDNUM) 628 VerNeedNum = Dyn.d_un.d_val; 629 630 const uint8_t *SecData = (const uint8_t *)Obj->base() + Sec->sh_offset; 631 const typename ELFO::Elf_Shdr *StrTab = 632 unwrapOrError(Obj->getSection(Sec->sh_link)); 633 634 const uint8_t *P = SecData; 635 for (unsigned I = 0; I < VerNeedNum; ++I) { 636 const VerNeed *Need = reinterpret_cast<const VerNeed *>(P); 637 DictScope Entry(W, "Dependency"); 638 W.printNumber("Version", Need->vn_version); 639 W.printNumber("Count", Need->vn_cnt); 640 W.printString("FileName", 641 StringRef((const char *)(Obj->base() + StrTab->sh_offset + 642 Need->vn_file))); 643 644 const uint8_t *PAux = P + Need->vn_aux; 645 for (unsigned J = 0; J < Need->vn_cnt; ++J) { 646 const VernAux *Aux = reinterpret_cast<const VernAux *>(PAux); 647 DictScope Entry(W, "Entry"); 648 W.printNumber("Hash", Aux->vna_hash); 649 W.printEnum("Flags", Aux->vna_flags, makeArrayRef(SymVersionFlags)); 650 W.printNumber("Index", Aux->vna_other); 651 W.printString("Name", 652 StringRef((const char *)(Obj->base() + StrTab->sh_offset + 653 Aux->vna_name))); 654 PAux += Aux->vna_next; 655 } 656 P += Need->vn_next; 657 } 658 } 659 660 template <typename ELFT> void ELFDumper<ELFT>::printVersionInfo() { 661 // Dump version symbol section. 662 printVersionSymbolSection(this, Obj, dot_gnu_version_sec, W); 663 664 // Dump version definition section. 665 printVersionDefinitionSection(this, Obj, dot_gnu_version_d_sec, W); 666 667 // Dump version dependency section. 668 printVersionDependencySection(this, Obj, dot_gnu_version_r_sec, W); 669 } 670 671 template <typename ELFT> 672 StringRef ELFDumper<ELFT>::getSymbolVersion(StringRef StrTab, 673 const Elf_Sym *symb, 674 bool &IsDefault) const { 675 // This is a dynamic symbol. Look in the GNU symbol version table. 676 if (!dot_gnu_version_sec) { 677 // No version table. 678 IsDefault = false; 679 return StringRef(""); 680 } 681 682 // Determine the position in the symbol table of this entry. 683 size_t entry_index = (reinterpret_cast<uintptr_t>(symb) - 684 reinterpret_cast<uintptr_t>(DynSymRegion.Addr)) / 685 sizeof(Elf_Sym); 686 687 // Get the corresponding version index entry 688 const Elf_Versym *vs = unwrapOrError( 689 Obj->template getEntry<Elf_Versym>(dot_gnu_version_sec, entry_index)); 690 size_t version_index = vs->vs_index & ELF::VERSYM_VERSION; 691 692 // Special markers for unversioned symbols. 693 if (version_index == ELF::VER_NDX_LOCAL || 694 version_index == ELF::VER_NDX_GLOBAL) { 695 IsDefault = false; 696 return StringRef(""); 697 } 698 699 // Lookup this symbol in the version table 700 LoadVersionMap(); 701 if (version_index >= VersionMap.size() || VersionMap[version_index].isNull()) 702 reportError("Invalid version entry"); 703 const VersionMapEntry &entry = VersionMap[version_index]; 704 705 // Get the version name string 706 size_t name_offset; 707 if (entry.isVerdef()) { 708 // The first Verdaux entry holds the name. 709 name_offset = entry.getVerdef()->getAux()->vda_name; 710 IsDefault = !(vs->vs_index & ELF::VERSYM_HIDDEN); 711 } else { 712 name_offset = entry.getVernaux()->vna_name; 713 IsDefault = false; 714 } 715 if (name_offset >= StrTab.size()) 716 reportError("Invalid string offset"); 717 return StringRef(StrTab.data() + name_offset); 718 } 719 720 template <typename ELFT> 721 std::string ELFDumper<ELFT>::getFullSymbolName(const Elf_Sym *Symbol, 722 StringRef StrTable, 723 bool IsDynamic) const { 724 StringRef SymbolName = unwrapOrError(Symbol->getName(StrTable)); 725 if (!IsDynamic) 726 return SymbolName; 727 728 std::string FullSymbolName(SymbolName); 729 730 bool IsDefault; 731 StringRef Version = getSymbolVersion(StrTable, &*Symbol, IsDefault); 732 FullSymbolName += (IsDefault ? "@@" : "@"); 733 FullSymbolName += Version; 734 return FullSymbolName; 735 } 736 737 template <typename ELFT> 738 static void 739 getSectionNameIndex(const ELFFile<ELFT> &Obj, const typename ELFT::Sym *Symbol, 740 const typename ELFT::Sym *FirstSym, 741 ArrayRef<typename ELFT::Word> ShndxTable, 742 StringRef &SectionName, unsigned &SectionIndex) { 743 SectionIndex = Symbol->st_shndx; 744 if (Symbol->isUndefined()) 745 SectionName = "Undefined"; 746 else if (Symbol->isProcessorSpecific()) 747 SectionName = "Processor Specific"; 748 else if (Symbol->isOSSpecific()) 749 SectionName = "Operating System Specific"; 750 else if (Symbol->isAbsolute()) 751 SectionName = "Absolute"; 752 else if (Symbol->isCommon()) 753 SectionName = "Common"; 754 else if (Symbol->isReserved() && SectionIndex != SHN_XINDEX) 755 SectionName = "Reserved"; 756 else { 757 if (SectionIndex == SHN_XINDEX) 758 SectionIndex = unwrapOrError(object::getExtendedSymbolTableIndex<ELFT>( 759 Symbol, FirstSym, ShndxTable)); 760 const typename ELFT::Shdr *Sec = 761 unwrapOrError(Obj.getSection(SectionIndex)); 762 SectionName = unwrapOrError(Obj.getSectionName(Sec)); 763 } 764 } 765 766 template <class ELFO> 767 static const typename ELFO::Elf_Shdr * 768 findNotEmptySectionByAddress(const ELFO *Obj, uint64_t Addr) { 769 for (const auto &Shdr : unwrapOrError(Obj->sections())) 770 if (Shdr.sh_addr == Addr && Shdr.sh_size > 0) 771 return &Shdr; 772 return nullptr; 773 } 774 775 template <class ELFO> 776 static const typename ELFO::Elf_Shdr *findSectionByName(const ELFO &Obj, 777 StringRef Name) { 778 for (const auto &Shdr : unwrapOrError(Obj.sections())) { 779 if (Name == unwrapOrError(Obj.getSectionName(&Shdr))) 780 return &Shdr; 781 } 782 return nullptr; 783 } 784 785 static const EnumEntry<unsigned> ElfClass[] = { 786 {"None", "none", ELF::ELFCLASSNONE}, 787 {"32-bit", "ELF32", ELF::ELFCLASS32}, 788 {"64-bit", "ELF64", ELF::ELFCLASS64}, 789 }; 790 791 static const EnumEntry<unsigned> ElfDataEncoding[] = { 792 {"None", "none", ELF::ELFDATANONE}, 793 {"LittleEndian", "2's complement, little endian", ELF::ELFDATA2LSB}, 794 {"BigEndian", "2's complement, big endian", ELF::ELFDATA2MSB}, 795 }; 796 797 static const EnumEntry<unsigned> ElfObjectFileType[] = { 798 {"None", "NONE (none)", ELF::ET_NONE}, 799 {"Relocatable", "REL (Relocatable file)", ELF::ET_REL}, 800 {"Executable", "EXEC (Executable file)", ELF::ET_EXEC}, 801 {"SharedObject", "DYN (Shared object file)", ELF::ET_DYN}, 802 {"Core", "CORE (Core file)", ELF::ET_CORE}, 803 }; 804 805 static const EnumEntry<unsigned> ElfOSABI[] = { 806 {"SystemV", "UNIX - System V", ELF::ELFOSABI_NONE}, 807 {"HPUX", "UNIX - HP-UX", ELF::ELFOSABI_HPUX}, 808 {"NetBSD", "UNIX - NetBSD", ELF::ELFOSABI_NETBSD}, 809 {"GNU/Linux", "UNIX - GNU", ELF::ELFOSABI_LINUX}, 810 {"GNU/Hurd", "GNU/Hurd", ELF::ELFOSABI_HURD}, 811 {"Solaris", "UNIX - Solaris", ELF::ELFOSABI_SOLARIS}, 812 {"AIX", "UNIX - AIX", ELF::ELFOSABI_AIX}, 813 {"IRIX", "UNIX - IRIX", ELF::ELFOSABI_IRIX}, 814 {"FreeBSD", "UNIX - FreeBSD", ELF::ELFOSABI_FREEBSD}, 815 {"TRU64", "UNIX - TRU64", ELF::ELFOSABI_TRU64}, 816 {"Modesto", "Novell - Modesto", ELF::ELFOSABI_MODESTO}, 817 {"OpenBSD", "UNIX - OpenBSD", ELF::ELFOSABI_OPENBSD}, 818 {"OpenVMS", "VMS - OpenVMS", ELF::ELFOSABI_OPENVMS}, 819 {"NSK", "HP - Non-Stop Kernel", ELF::ELFOSABI_NSK}, 820 {"AROS", "AROS", ELF::ELFOSABI_AROS}, 821 {"FenixOS", "FenixOS", ELF::ELFOSABI_FENIXOS}, 822 {"CloudABI", "CloudABI", ELF::ELFOSABI_CLOUDABI}, 823 {"Standalone", "Standalone App", ELF::ELFOSABI_STANDALONE} 824 }; 825 826 static const EnumEntry<unsigned> AMDGPUElfOSABI[] = { 827 {"AMDGPU_HSA", "AMDGPU - HSA", ELF::ELFOSABI_AMDGPU_HSA}, 828 {"AMDGPU_PAL", "AMDGPU - PAL", ELF::ELFOSABI_AMDGPU_PAL}, 829 {"AMDGPU_MESA3D", "AMDGPU - MESA3D", ELF::ELFOSABI_AMDGPU_MESA3D} 830 }; 831 832 static const EnumEntry<unsigned> ARMElfOSABI[] = { 833 {"ARM", "ARM", ELF::ELFOSABI_ARM} 834 }; 835 836 static const EnumEntry<unsigned> C6000ElfOSABI[] = { 837 {"C6000_ELFABI", "Bare-metal C6000", ELF::ELFOSABI_C6000_ELFABI}, 838 {"C6000_LINUX", "Linux C6000", ELF::ELFOSABI_C6000_LINUX} 839 }; 840 841 static const EnumEntry<unsigned> ElfMachineType[] = { 842 ENUM_ENT(EM_NONE, "None"), 843 ENUM_ENT(EM_M32, "WE32100"), 844 ENUM_ENT(EM_SPARC, "Sparc"), 845 ENUM_ENT(EM_386, "Intel 80386"), 846 ENUM_ENT(EM_68K, "MC68000"), 847 ENUM_ENT(EM_88K, "MC88000"), 848 ENUM_ENT(EM_IAMCU, "EM_IAMCU"), 849 ENUM_ENT(EM_860, "Intel 80860"), 850 ENUM_ENT(EM_MIPS, "MIPS R3000"), 851 ENUM_ENT(EM_S370, "IBM System/370"), 852 ENUM_ENT(EM_MIPS_RS3_LE, "MIPS R3000 little-endian"), 853 ENUM_ENT(EM_PARISC, "HPPA"), 854 ENUM_ENT(EM_VPP500, "Fujitsu VPP500"), 855 ENUM_ENT(EM_SPARC32PLUS, "Sparc v8+"), 856 ENUM_ENT(EM_960, "Intel 80960"), 857 ENUM_ENT(EM_PPC, "PowerPC"), 858 ENUM_ENT(EM_PPC64, "PowerPC64"), 859 ENUM_ENT(EM_S390, "IBM S/390"), 860 ENUM_ENT(EM_SPU, "SPU"), 861 ENUM_ENT(EM_V800, "NEC V800 series"), 862 ENUM_ENT(EM_FR20, "Fujistsu FR20"), 863 ENUM_ENT(EM_RH32, "TRW RH-32"), 864 ENUM_ENT(EM_RCE, "Motorola RCE"), 865 ENUM_ENT(EM_ARM, "ARM"), 866 ENUM_ENT(EM_ALPHA, "EM_ALPHA"), 867 ENUM_ENT(EM_SH, "Hitachi SH"), 868 ENUM_ENT(EM_SPARCV9, "Sparc v9"), 869 ENUM_ENT(EM_TRICORE, "Siemens Tricore"), 870 ENUM_ENT(EM_ARC, "ARC"), 871 ENUM_ENT(EM_H8_300, "Hitachi H8/300"), 872 ENUM_ENT(EM_H8_300H, "Hitachi H8/300H"), 873 ENUM_ENT(EM_H8S, "Hitachi H8S"), 874 ENUM_ENT(EM_H8_500, "Hitachi H8/500"), 875 ENUM_ENT(EM_IA_64, "Intel IA-64"), 876 ENUM_ENT(EM_MIPS_X, "Stanford MIPS-X"), 877 ENUM_ENT(EM_COLDFIRE, "Motorola Coldfire"), 878 ENUM_ENT(EM_68HC12, "Motorola MC68HC12 Microcontroller"), 879 ENUM_ENT(EM_MMA, "Fujitsu Multimedia Accelerator"), 880 ENUM_ENT(EM_PCP, "Siemens PCP"), 881 ENUM_ENT(EM_NCPU, "Sony nCPU embedded RISC processor"), 882 ENUM_ENT(EM_NDR1, "Denso NDR1 microprocesspr"), 883 ENUM_ENT(EM_STARCORE, "Motorola Star*Core processor"), 884 ENUM_ENT(EM_ME16, "Toyota ME16 processor"), 885 ENUM_ENT(EM_ST100, "STMicroelectronics ST100 processor"), 886 ENUM_ENT(EM_TINYJ, "Advanced Logic Corp. TinyJ embedded processor"), 887 ENUM_ENT(EM_X86_64, "Advanced Micro Devices X86-64"), 888 ENUM_ENT(EM_PDSP, "Sony DSP processor"), 889 ENUM_ENT(EM_PDP10, "Digital Equipment Corp. PDP-10"), 890 ENUM_ENT(EM_PDP11, "Digital Equipment Corp. PDP-11"), 891 ENUM_ENT(EM_FX66, "Siemens FX66 microcontroller"), 892 ENUM_ENT(EM_ST9PLUS, "STMicroelectronics ST9+ 8/16 bit microcontroller"), 893 ENUM_ENT(EM_ST7, "STMicroelectronics ST7 8-bit microcontroller"), 894 ENUM_ENT(EM_68HC16, "Motorola MC68HC16 Microcontroller"), 895 ENUM_ENT(EM_68HC11, "Motorola MC68HC11 Microcontroller"), 896 ENUM_ENT(EM_68HC08, "Motorola MC68HC08 Microcontroller"), 897 ENUM_ENT(EM_68HC05, "Motorola MC68HC05 Microcontroller"), 898 ENUM_ENT(EM_SVX, "Silicon Graphics SVx"), 899 ENUM_ENT(EM_ST19, "STMicroelectronics ST19 8-bit microcontroller"), 900 ENUM_ENT(EM_VAX, "Digital VAX"), 901 ENUM_ENT(EM_CRIS, "Axis Communications 32-bit embedded processor"), 902 ENUM_ENT(EM_JAVELIN, "Infineon Technologies 32-bit embedded cpu"), 903 ENUM_ENT(EM_FIREPATH, "Element 14 64-bit DSP processor"), 904 ENUM_ENT(EM_ZSP, "LSI Logic's 16-bit DSP processor"), 905 ENUM_ENT(EM_MMIX, "Donald Knuth's educational 64-bit processor"), 906 ENUM_ENT(EM_HUANY, "Harvard Universitys's machine-independent object format"), 907 ENUM_ENT(EM_PRISM, "Vitesse Prism"), 908 ENUM_ENT(EM_AVR, "Atmel AVR 8-bit microcontroller"), 909 ENUM_ENT(EM_FR30, "Fujitsu FR30"), 910 ENUM_ENT(EM_D10V, "Mitsubishi D10V"), 911 ENUM_ENT(EM_D30V, "Mitsubishi D30V"), 912 ENUM_ENT(EM_V850, "NEC v850"), 913 ENUM_ENT(EM_M32R, "Renesas M32R (formerly Mitsubishi M32r)"), 914 ENUM_ENT(EM_MN10300, "Matsushita MN10300"), 915 ENUM_ENT(EM_MN10200, "Matsushita MN10200"), 916 ENUM_ENT(EM_PJ, "picoJava"), 917 ENUM_ENT(EM_OPENRISC, "OpenRISC 32-bit embedded processor"), 918 ENUM_ENT(EM_ARC_COMPACT, "EM_ARC_COMPACT"), 919 ENUM_ENT(EM_XTENSA, "Tensilica Xtensa Processor"), 920 ENUM_ENT(EM_VIDEOCORE, "Alphamosaic VideoCore processor"), 921 ENUM_ENT(EM_TMM_GPP, "Thompson Multimedia General Purpose Processor"), 922 ENUM_ENT(EM_NS32K, "National Semiconductor 32000 series"), 923 ENUM_ENT(EM_TPC, "Tenor Network TPC processor"), 924 ENUM_ENT(EM_SNP1K, "EM_SNP1K"), 925 ENUM_ENT(EM_ST200, "STMicroelectronics ST200 microcontroller"), 926 ENUM_ENT(EM_IP2K, "Ubicom IP2xxx 8-bit microcontrollers"), 927 ENUM_ENT(EM_MAX, "MAX Processor"), 928 ENUM_ENT(EM_CR, "National Semiconductor CompactRISC"), 929 ENUM_ENT(EM_F2MC16, "Fujitsu F2MC16"), 930 ENUM_ENT(EM_MSP430, "Texas Instruments msp430 microcontroller"), 931 ENUM_ENT(EM_BLACKFIN, "Analog Devices Blackfin"), 932 ENUM_ENT(EM_SE_C33, "S1C33 Family of Seiko Epson processors"), 933 ENUM_ENT(EM_SEP, "Sharp embedded microprocessor"), 934 ENUM_ENT(EM_ARCA, "Arca RISC microprocessor"), 935 ENUM_ENT(EM_UNICORE, "Unicore"), 936 ENUM_ENT(EM_EXCESS, "eXcess 16/32/64-bit configurable embedded CPU"), 937 ENUM_ENT(EM_DXP, "Icera Semiconductor Inc. Deep Execution Processor"), 938 ENUM_ENT(EM_ALTERA_NIOS2, "Altera Nios"), 939 ENUM_ENT(EM_CRX, "National Semiconductor CRX microprocessor"), 940 ENUM_ENT(EM_XGATE, "Motorola XGATE embedded processor"), 941 ENUM_ENT(EM_C166, "Infineon Technologies xc16x"), 942 ENUM_ENT(EM_M16C, "Renesas M16C"), 943 ENUM_ENT(EM_DSPIC30F, "Microchip Technology dsPIC30F Digital Signal Controller"), 944 ENUM_ENT(EM_CE, "Freescale Communication Engine RISC core"), 945 ENUM_ENT(EM_M32C, "Renesas M32C"), 946 ENUM_ENT(EM_TSK3000, "Altium TSK3000 core"), 947 ENUM_ENT(EM_RS08, "Freescale RS08 embedded processor"), 948 ENUM_ENT(EM_SHARC, "EM_SHARC"), 949 ENUM_ENT(EM_ECOG2, "Cyan Technology eCOG2 microprocessor"), 950 ENUM_ENT(EM_SCORE7, "SUNPLUS S+Core"), 951 ENUM_ENT(EM_DSP24, "New Japan Radio (NJR) 24-bit DSP Processor"), 952 ENUM_ENT(EM_VIDEOCORE3, "Broadcom VideoCore III processor"), 953 ENUM_ENT(EM_LATTICEMICO32, "Lattice Mico32"), 954 ENUM_ENT(EM_SE_C17, "Seiko Epson C17 family"), 955 ENUM_ENT(EM_TI_C6000, "Texas Instruments TMS320C6000 DSP family"), 956 ENUM_ENT(EM_TI_C2000, "Texas Instruments TMS320C2000 DSP family"), 957 ENUM_ENT(EM_TI_C5500, "Texas Instruments TMS320C55x DSP family"), 958 ENUM_ENT(EM_MMDSP_PLUS, "STMicroelectronics 64bit VLIW Data Signal Processor"), 959 ENUM_ENT(EM_CYPRESS_M8C, "Cypress M8C microprocessor"), 960 ENUM_ENT(EM_R32C, "Renesas R32C series microprocessors"), 961 ENUM_ENT(EM_TRIMEDIA, "NXP Semiconductors TriMedia architecture family"), 962 ENUM_ENT(EM_HEXAGON, "Qualcomm Hexagon"), 963 ENUM_ENT(EM_8051, "Intel 8051 and variants"), 964 ENUM_ENT(EM_STXP7X, "STMicroelectronics STxP7x family"), 965 ENUM_ENT(EM_NDS32, "Andes Technology compact code size embedded RISC processor family"), 966 ENUM_ENT(EM_ECOG1, "Cyan Technology eCOG1 microprocessor"), 967 ENUM_ENT(EM_ECOG1X, "Cyan Technology eCOG1X family"), 968 ENUM_ENT(EM_MAXQ30, "Dallas Semiconductor MAXQ30 Core microcontrollers"), 969 ENUM_ENT(EM_XIMO16, "New Japan Radio (NJR) 16-bit DSP Processor"), 970 ENUM_ENT(EM_MANIK, "M2000 Reconfigurable RISC Microprocessor"), 971 ENUM_ENT(EM_CRAYNV2, "Cray Inc. NV2 vector architecture"), 972 ENUM_ENT(EM_RX, "Renesas RX"), 973 ENUM_ENT(EM_METAG, "Imagination Technologies Meta processor architecture"), 974 ENUM_ENT(EM_MCST_ELBRUS, "MCST Elbrus general purpose hardware architecture"), 975 ENUM_ENT(EM_ECOG16, "Cyan Technology eCOG16 family"), 976 ENUM_ENT(EM_CR16, "Xilinx MicroBlaze"), 977 ENUM_ENT(EM_ETPU, "Freescale Extended Time Processing Unit"), 978 ENUM_ENT(EM_SLE9X, "Infineon Technologies SLE9X core"), 979 ENUM_ENT(EM_L10M, "EM_L10M"), 980 ENUM_ENT(EM_K10M, "EM_K10M"), 981 ENUM_ENT(EM_AARCH64, "AArch64"), 982 ENUM_ENT(EM_AVR32, "Atmel Corporation 32-bit microprocessor family"), 983 ENUM_ENT(EM_STM8, "STMicroeletronics STM8 8-bit microcontroller"), 984 ENUM_ENT(EM_TILE64, "Tilera TILE64 multicore architecture family"), 985 ENUM_ENT(EM_TILEPRO, "Tilera TILEPro multicore architecture family"), 986 ENUM_ENT(EM_CUDA, "NVIDIA CUDA architecture"), 987 ENUM_ENT(EM_TILEGX, "Tilera TILE-Gx multicore architecture family"), 988 ENUM_ENT(EM_CLOUDSHIELD, "EM_CLOUDSHIELD"), 989 ENUM_ENT(EM_COREA_1ST, "EM_COREA_1ST"), 990 ENUM_ENT(EM_COREA_2ND, "EM_COREA_2ND"), 991 ENUM_ENT(EM_ARC_COMPACT2, "EM_ARC_COMPACT2"), 992 ENUM_ENT(EM_OPEN8, "EM_OPEN8"), 993 ENUM_ENT(EM_RL78, "Renesas RL78"), 994 ENUM_ENT(EM_VIDEOCORE5, "Broadcom VideoCore V processor"), 995 ENUM_ENT(EM_78KOR, "EM_78KOR"), 996 ENUM_ENT(EM_56800EX, "EM_56800EX"), 997 ENUM_ENT(EM_AMDGPU, "EM_AMDGPU"), 998 ENUM_ENT(EM_RISCV, "RISC-V"), 999 ENUM_ENT(EM_WEBASSEMBLY, "EM_WEBASSEMBLY"), 1000 ENUM_ENT(EM_LANAI, "EM_LANAI"), 1001 ENUM_ENT(EM_BPF, "EM_BPF"), 1002 }; 1003 1004 static const EnumEntry<unsigned> ElfSymbolBindings[] = { 1005 {"Local", "LOCAL", ELF::STB_LOCAL}, 1006 {"Global", "GLOBAL", ELF::STB_GLOBAL}, 1007 {"Weak", "WEAK", ELF::STB_WEAK}, 1008 {"Unique", "UNIQUE", ELF::STB_GNU_UNIQUE}}; 1009 1010 static const EnumEntry<unsigned> ElfSymbolVisibilities[] = { 1011 {"DEFAULT", "DEFAULT", ELF::STV_DEFAULT}, 1012 {"INTERNAL", "INTERNAL", ELF::STV_INTERNAL}, 1013 {"HIDDEN", "HIDDEN", ELF::STV_HIDDEN}, 1014 {"PROTECTED", "PROTECTED", ELF::STV_PROTECTED}}; 1015 1016 static const EnumEntry<unsigned> ElfSymbolTypes[] = { 1017 {"None", "NOTYPE", ELF::STT_NOTYPE}, 1018 {"Object", "OBJECT", ELF::STT_OBJECT}, 1019 {"Function", "FUNC", ELF::STT_FUNC}, 1020 {"Section", "SECTION", ELF::STT_SECTION}, 1021 {"File", "FILE", ELF::STT_FILE}, 1022 {"Common", "COMMON", ELF::STT_COMMON}, 1023 {"TLS", "TLS", ELF::STT_TLS}, 1024 {"GNU_IFunc", "IFUNC", ELF::STT_GNU_IFUNC}}; 1025 1026 static const EnumEntry<unsigned> AMDGPUSymbolTypes[] = { 1027 { "AMDGPU_HSA_KERNEL", ELF::STT_AMDGPU_HSA_KERNEL } 1028 }; 1029 1030 static const char *getGroupType(uint32_t Flag) { 1031 if (Flag & ELF::GRP_COMDAT) 1032 return "COMDAT"; 1033 else 1034 return "(unknown)"; 1035 } 1036 1037 static const EnumEntry<unsigned> ElfSectionFlags[] = { 1038 ENUM_ENT(SHF_WRITE, "W"), 1039 ENUM_ENT(SHF_ALLOC, "A"), 1040 ENUM_ENT(SHF_EXCLUDE, "E"), 1041 ENUM_ENT(SHF_EXECINSTR, "X"), 1042 ENUM_ENT(SHF_MERGE, "M"), 1043 ENUM_ENT(SHF_STRINGS, "S"), 1044 ENUM_ENT(SHF_INFO_LINK, "I"), 1045 ENUM_ENT(SHF_LINK_ORDER, "L"), 1046 ENUM_ENT(SHF_OS_NONCONFORMING, "o"), 1047 ENUM_ENT(SHF_GROUP, "G"), 1048 ENUM_ENT(SHF_TLS, "T"), 1049 ENUM_ENT(SHF_MASKOS, "o"), 1050 ENUM_ENT(SHF_MASKPROC, "p"), 1051 ENUM_ENT_1(SHF_COMPRESSED), 1052 }; 1053 1054 static const EnumEntry<unsigned> ElfXCoreSectionFlags[] = { 1055 LLVM_READOBJ_ENUM_ENT(ELF, XCORE_SHF_CP_SECTION), 1056 LLVM_READOBJ_ENUM_ENT(ELF, XCORE_SHF_DP_SECTION) 1057 }; 1058 1059 static const EnumEntry<unsigned> ElfARMSectionFlags[] = { 1060 LLVM_READOBJ_ENUM_ENT(ELF, SHF_ARM_PURECODE) 1061 }; 1062 1063 static const EnumEntry<unsigned> ElfHexagonSectionFlags[] = { 1064 LLVM_READOBJ_ENUM_ENT(ELF, SHF_HEX_GPREL) 1065 }; 1066 1067 static const EnumEntry<unsigned> ElfMipsSectionFlags[] = { 1068 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_NODUPES), 1069 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_NAMES ), 1070 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_LOCAL ), 1071 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_NOSTRIP), 1072 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_GPREL ), 1073 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_MERGE ), 1074 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_ADDR ), 1075 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_STRING ) 1076 }; 1077 1078 static const EnumEntry<unsigned> ElfX86_64SectionFlags[] = { 1079 LLVM_READOBJ_ENUM_ENT(ELF, SHF_X86_64_LARGE) 1080 }; 1081 1082 static std::string getGNUFlags(uint64_t Flags) { 1083 std::string Str; 1084 for (auto Entry : ElfSectionFlags) { 1085 uint64_t Flag = Entry.Value & Flags; 1086 Flags &= ~Entry.Value; 1087 switch (Flag) { 1088 case ELF::SHF_WRITE: 1089 case ELF::SHF_ALLOC: 1090 case ELF::SHF_EXECINSTR: 1091 case ELF::SHF_MERGE: 1092 case ELF::SHF_STRINGS: 1093 case ELF::SHF_INFO_LINK: 1094 case ELF::SHF_LINK_ORDER: 1095 case ELF::SHF_OS_NONCONFORMING: 1096 case ELF::SHF_GROUP: 1097 case ELF::SHF_TLS: 1098 case ELF::SHF_EXCLUDE: 1099 Str += Entry.AltName; 1100 break; 1101 default: 1102 if (Flag & ELF::SHF_MASKOS) 1103 Str += "o"; 1104 else if (Flag & ELF::SHF_MASKPROC) 1105 Str += "p"; 1106 else if (Flag) 1107 Str += "x"; 1108 } 1109 } 1110 return Str; 1111 } 1112 1113 static const char *getElfSegmentType(unsigned Arch, unsigned Type) { 1114 // Check potentially overlapped processor-specific 1115 // program header type. 1116 switch (Arch) { 1117 case ELF::EM_ARM: 1118 switch (Type) { 1119 LLVM_READOBJ_ENUM_CASE(ELF, PT_ARM_EXIDX); 1120 } 1121 case ELF::EM_MIPS: 1122 case ELF::EM_MIPS_RS3_LE: 1123 switch (Type) { 1124 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_REGINFO); 1125 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_RTPROC); 1126 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_OPTIONS); 1127 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_ABIFLAGS); 1128 } 1129 } 1130 1131 switch (Type) { 1132 LLVM_READOBJ_ENUM_CASE(ELF, PT_NULL ); 1133 LLVM_READOBJ_ENUM_CASE(ELF, PT_LOAD ); 1134 LLVM_READOBJ_ENUM_CASE(ELF, PT_DYNAMIC); 1135 LLVM_READOBJ_ENUM_CASE(ELF, PT_INTERP ); 1136 LLVM_READOBJ_ENUM_CASE(ELF, PT_NOTE ); 1137 LLVM_READOBJ_ENUM_CASE(ELF, PT_SHLIB ); 1138 LLVM_READOBJ_ENUM_CASE(ELF, PT_PHDR ); 1139 LLVM_READOBJ_ENUM_CASE(ELF, PT_TLS ); 1140 1141 LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_EH_FRAME); 1142 LLVM_READOBJ_ENUM_CASE(ELF, PT_SUNW_UNWIND); 1143 1144 LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_STACK); 1145 LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_RELRO); 1146 1147 LLVM_READOBJ_ENUM_CASE(ELF, PT_OPENBSD_RANDOMIZE); 1148 LLVM_READOBJ_ENUM_CASE(ELF, PT_OPENBSD_WXNEEDED); 1149 LLVM_READOBJ_ENUM_CASE(ELF, PT_OPENBSD_BOOTDATA); 1150 1151 default: return ""; 1152 } 1153 } 1154 1155 static std::string getElfPtType(unsigned Arch, unsigned Type) { 1156 switch (Type) { 1157 LLVM_READOBJ_PHDR_ENUM(ELF, PT_NULL) 1158 LLVM_READOBJ_PHDR_ENUM(ELF, PT_LOAD) 1159 LLVM_READOBJ_PHDR_ENUM(ELF, PT_DYNAMIC) 1160 LLVM_READOBJ_PHDR_ENUM(ELF, PT_INTERP) 1161 LLVM_READOBJ_PHDR_ENUM(ELF, PT_NOTE) 1162 LLVM_READOBJ_PHDR_ENUM(ELF, PT_SHLIB) 1163 LLVM_READOBJ_PHDR_ENUM(ELF, PT_PHDR) 1164 LLVM_READOBJ_PHDR_ENUM(ELF, PT_TLS) 1165 LLVM_READOBJ_PHDR_ENUM(ELF, PT_GNU_EH_FRAME) 1166 LLVM_READOBJ_PHDR_ENUM(ELF, PT_SUNW_UNWIND) 1167 LLVM_READOBJ_PHDR_ENUM(ELF, PT_GNU_STACK) 1168 LLVM_READOBJ_PHDR_ENUM(ELF, PT_GNU_RELRO) 1169 default: 1170 // All machine specific PT_* types 1171 switch (Arch) { 1172 case ELF::EM_ARM: 1173 if (Type == ELF::PT_ARM_EXIDX) 1174 return "EXIDX"; 1175 return ""; 1176 case ELF::EM_MIPS: 1177 case ELF::EM_MIPS_RS3_LE: 1178 switch (Type) { 1179 case PT_MIPS_REGINFO: 1180 return "REGINFO"; 1181 case PT_MIPS_RTPROC: 1182 return "RTPROC"; 1183 case PT_MIPS_OPTIONS: 1184 return "OPTIONS"; 1185 case PT_MIPS_ABIFLAGS: 1186 return "ABIFLAGS"; 1187 } 1188 return ""; 1189 } 1190 } 1191 return std::string("<unknown>: ") + to_string(format_hex(Type, 1)); 1192 } 1193 1194 static const EnumEntry<unsigned> ElfSegmentFlags[] = { 1195 LLVM_READOBJ_ENUM_ENT(ELF, PF_X), 1196 LLVM_READOBJ_ENUM_ENT(ELF, PF_W), 1197 LLVM_READOBJ_ENUM_ENT(ELF, PF_R) 1198 }; 1199 1200 static const EnumEntry<unsigned> ElfHeaderMipsFlags[] = { 1201 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_NOREORDER), 1202 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_PIC), 1203 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_CPIC), 1204 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI2), 1205 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_32BITMODE), 1206 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_FP64), 1207 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_NAN2008), 1208 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_O32), 1209 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_O64), 1210 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_EABI32), 1211 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_EABI64), 1212 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_3900), 1213 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4010), 1214 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4100), 1215 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4650), 1216 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4120), 1217 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4111), 1218 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_SB1), 1219 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_OCTEON), 1220 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_XLR), 1221 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_OCTEON2), 1222 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_OCTEON3), 1223 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_5400), 1224 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_5900), 1225 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_5500), 1226 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_9000), 1227 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_LS2E), 1228 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_LS2F), 1229 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_LS3A), 1230 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MICROMIPS), 1231 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_ASE_M16), 1232 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_ASE_MDMX), 1233 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_1), 1234 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_2), 1235 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_3), 1236 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_4), 1237 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_5), 1238 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_32), 1239 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_64), 1240 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_32R2), 1241 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_64R2), 1242 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_32R6), 1243 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_64R6) 1244 }; 1245 1246 static const EnumEntry<unsigned> ElfHeaderAMDGPUFlags[] = { 1247 LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_ARCH_NONE), 1248 LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_ARCH_R600), 1249 LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_ARCH_GCN) 1250 }; 1251 1252 static const EnumEntry<unsigned> ElfHeaderRISCVFlags[] = { 1253 LLVM_READOBJ_ENUM_ENT(ELF, EF_RISCV_RVC), 1254 LLVM_READOBJ_ENUM_ENT(ELF, EF_RISCV_FLOAT_ABI_SINGLE), 1255 LLVM_READOBJ_ENUM_ENT(ELF, EF_RISCV_FLOAT_ABI_DOUBLE), 1256 LLVM_READOBJ_ENUM_ENT(ELF, EF_RISCV_FLOAT_ABI_QUAD), 1257 LLVM_READOBJ_ENUM_ENT(ELF, EF_RISCV_RVE) 1258 }; 1259 1260 static const EnumEntry<unsigned> ElfSymOtherFlags[] = { 1261 LLVM_READOBJ_ENUM_ENT(ELF, STV_INTERNAL), 1262 LLVM_READOBJ_ENUM_ENT(ELF, STV_HIDDEN), 1263 LLVM_READOBJ_ENUM_ENT(ELF, STV_PROTECTED) 1264 }; 1265 1266 static const EnumEntry<unsigned> ElfMipsSymOtherFlags[] = { 1267 LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_OPTIONAL), 1268 LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_PLT), 1269 LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_PIC), 1270 LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_MICROMIPS) 1271 }; 1272 1273 static const EnumEntry<unsigned> ElfMips16SymOtherFlags[] = { 1274 LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_OPTIONAL), 1275 LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_PLT), 1276 LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_MIPS16) 1277 }; 1278 1279 static const char *getElfMipsOptionsOdkType(unsigned Odk) { 1280 switch (Odk) { 1281 LLVM_READOBJ_ENUM_CASE(ELF, ODK_NULL); 1282 LLVM_READOBJ_ENUM_CASE(ELF, ODK_REGINFO); 1283 LLVM_READOBJ_ENUM_CASE(ELF, ODK_EXCEPTIONS); 1284 LLVM_READOBJ_ENUM_CASE(ELF, ODK_PAD); 1285 LLVM_READOBJ_ENUM_CASE(ELF, ODK_HWPATCH); 1286 LLVM_READOBJ_ENUM_CASE(ELF, ODK_FILL); 1287 LLVM_READOBJ_ENUM_CASE(ELF, ODK_TAGS); 1288 LLVM_READOBJ_ENUM_CASE(ELF, ODK_HWAND); 1289 LLVM_READOBJ_ENUM_CASE(ELF, ODK_HWOR); 1290 LLVM_READOBJ_ENUM_CASE(ELF, ODK_GP_GROUP); 1291 LLVM_READOBJ_ENUM_CASE(ELF, ODK_IDENT); 1292 LLVM_READOBJ_ENUM_CASE(ELF, ODK_PAGESIZE); 1293 default: 1294 return "Unknown"; 1295 } 1296 } 1297 1298 template <typename ELFT> 1299 ELFDumper<ELFT>::ELFDumper(const ELFFile<ELFT> *Obj, ScopedPrinter &Writer) 1300 : ObjDumper(Writer), Obj(Obj) { 1301 SmallVector<const Elf_Phdr *, 4> LoadSegments; 1302 for (const Elf_Phdr &Phdr : unwrapOrError(Obj->program_headers())) { 1303 if (Phdr.p_type == ELF::PT_DYNAMIC) { 1304 DynamicTable = createDRIFrom(&Phdr, sizeof(Elf_Dyn)); 1305 continue; 1306 } 1307 if (Phdr.p_type != ELF::PT_LOAD || Phdr.p_filesz == 0) 1308 continue; 1309 LoadSegments.push_back(&Phdr); 1310 } 1311 1312 for (const Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 1313 switch (Sec.sh_type) { 1314 case ELF::SHT_SYMTAB: 1315 if (DotSymtabSec != nullptr) 1316 reportError("Multiple SHT_SYMTAB"); 1317 DotSymtabSec = &Sec; 1318 break; 1319 case ELF::SHT_DYNSYM: 1320 if (DynSymRegion.Size) 1321 reportError("Multiple SHT_DYNSYM"); 1322 DynSymRegion = createDRIFrom(&Sec); 1323 // This is only used (if Elf_Shdr present)for naming section in GNU style 1324 DynSymtabName = unwrapOrError(Obj->getSectionName(&Sec)); 1325 break; 1326 case ELF::SHT_SYMTAB_SHNDX: 1327 ShndxTable = unwrapOrError(Obj->getSHNDXTable(Sec)); 1328 break; 1329 case ELF::SHT_GNU_versym: 1330 if (dot_gnu_version_sec != nullptr) 1331 reportError("Multiple SHT_GNU_versym"); 1332 dot_gnu_version_sec = &Sec; 1333 break; 1334 case ELF::SHT_GNU_verdef: 1335 if (dot_gnu_version_d_sec != nullptr) 1336 reportError("Multiple SHT_GNU_verdef"); 1337 dot_gnu_version_d_sec = &Sec; 1338 break; 1339 case ELF::SHT_GNU_verneed: 1340 if (dot_gnu_version_r_sec != nullptr) 1341 reportError("Multiple SHT_GNU_verneed"); 1342 dot_gnu_version_r_sec = &Sec; 1343 break; 1344 } 1345 } 1346 1347 parseDynamicTable(LoadSegments); 1348 1349 if (opts::Output == opts::GNU) 1350 ELFDumperStyle.reset(new GNUStyle<ELFT>(Writer, this)); 1351 else 1352 ELFDumperStyle.reset(new LLVMStyle<ELFT>(Writer, this)); 1353 } 1354 1355 template <typename ELFT> 1356 void ELFDumper<ELFT>::parseDynamicTable( 1357 ArrayRef<const Elf_Phdr *> LoadSegments) { 1358 auto toMappedAddr = [&](uint64_t VAddr) -> const uint8_t * { 1359 const Elf_Phdr *const *I = std::upper_bound( 1360 LoadSegments.begin(), LoadSegments.end(), VAddr, compareAddr<ELFT>); 1361 if (I == LoadSegments.begin()) 1362 report_fatal_error("Virtual address is not in any segment"); 1363 --I; 1364 const Elf_Phdr &Phdr = **I; 1365 uint64_t Delta = VAddr - Phdr.p_vaddr; 1366 if (Delta >= Phdr.p_filesz) 1367 report_fatal_error("Virtual address is not in any segment"); 1368 return Obj->base() + Phdr.p_offset + Delta; 1369 }; 1370 1371 uint64_t SONameOffset = 0; 1372 const char *StringTableBegin = nullptr; 1373 uint64_t StringTableSize = 0; 1374 for (const Elf_Dyn &Dyn : dynamic_table()) { 1375 switch (Dyn.d_tag) { 1376 case ELF::DT_HASH: 1377 HashTable = 1378 reinterpret_cast<const Elf_Hash *>(toMappedAddr(Dyn.getPtr())); 1379 break; 1380 case ELF::DT_GNU_HASH: 1381 GnuHashTable = 1382 reinterpret_cast<const Elf_GnuHash *>(toMappedAddr(Dyn.getPtr())); 1383 break; 1384 case ELF::DT_STRTAB: 1385 StringTableBegin = (const char *)toMappedAddr(Dyn.getPtr()); 1386 break; 1387 case ELF::DT_STRSZ: 1388 StringTableSize = Dyn.getVal(); 1389 break; 1390 case ELF::DT_SYMTAB: 1391 DynSymRegion.Addr = toMappedAddr(Dyn.getPtr()); 1392 DynSymRegion.EntSize = sizeof(Elf_Sym); 1393 break; 1394 case ELF::DT_RELA: 1395 DynRelaRegion.Addr = toMappedAddr(Dyn.getPtr()); 1396 break; 1397 case ELF::DT_RELASZ: 1398 DynRelaRegion.Size = Dyn.getVal(); 1399 break; 1400 case ELF::DT_RELAENT: 1401 DynRelaRegion.EntSize = Dyn.getVal(); 1402 break; 1403 case ELF::DT_SONAME: 1404 SONameOffset = Dyn.getVal(); 1405 break; 1406 case ELF::DT_REL: 1407 DynRelRegion.Addr = toMappedAddr(Dyn.getPtr()); 1408 break; 1409 case ELF::DT_RELSZ: 1410 DynRelRegion.Size = Dyn.getVal(); 1411 break; 1412 case ELF::DT_RELENT: 1413 DynRelRegion.EntSize = Dyn.getVal(); 1414 break; 1415 case ELF::DT_PLTREL: 1416 if (Dyn.getVal() == DT_REL) 1417 DynPLTRelRegion.EntSize = sizeof(Elf_Rel); 1418 else if (Dyn.getVal() == DT_RELA) 1419 DynPLTRelRegion.EntSize = sizeof(Elf_Rela); 1420 else 1421 reportError(Twine("unknown DT_PLTREL value of ") + 1422 Twine((uint64_t)Dyn.getVal())); 1423 break; 1424 case ELF::DT_JMPREL: 1425 DynPLTRelRegion.Addr = toMappedAddr(Dyn.getPtr()); 1426 break; 1427 case ELF::DT_PLTRELSZ: 1428 DynPLTRelRegion.Size = Dyn.getVal(); 1429 break; 1430 } 1431 } 1432 if (StringTableBegin) 1433 DynamicStringTable = StringRef(StringTableBegin, StringTableSize); 1434 if (SONameOffset) 1435 SOName = getDynamicString(SONameOffset); 1436 } 1437 1438 template <typename ELFT> 1439 typename ELFDumper<ELFT>::Elf_Rel_Range ELFDumper<ELFT>::dyn_rels() const { 1440 return DynRelRegion.getAsArrayRef<Elf_Rel>(); 1441 } 1442 1443 template <typename ELFT> 1444 typename ELFDumper<ELFT>::Elf_Rela_Range ELFDumper<ELFT>::dyn_relas() const { 1445 return DynRelaRegion.getAsArrayRef<Elf_Rela>(); 1446 } 1447 1448 template<class ELFT> 1449 void ELFDumper<ELFT>::printFileHeaders() { 1450 ELFDumperStyle->printFileHeaders(Obj); 1451 } 1452 1453 template<class ELFT> 1454 void ELFDumper<ELFT>::printSections() { 1455 ELFDumperStyle->printSections(Obj); 1456 } 1457 1458 template<class ELFT> 1459 void ELFDumper<ELFT>::printRelocations() { 1460 ELFDumperStyle->printRelocations(Obj); 1461 } 1462 1463 template <class ELFT> void ELFDumper<ELFT>::printProgramHeaders() { 1464 ELFDumperStyle->printProgramHeaders(Obj); 1465 } 1466 1467 template <class ELFT> void ELFDumper<ELFT>::printDynamicRelocations() { 1468 ELFDumperStyle->printDynamicRelocations(Obj); 1469 } 1470 1471 template<class ELFT> 1472 void ELFDumper<ELFT>::printSymbols() { 1473 ELFDumperStyle->printSymbols(Obj); 1474 } 1475 1476 template<class ELFT> 1477 void ELFDumper<ELFT>::printDynamicSymbols() { 1478 ELFDumperStyle->printDynamicSymbols(Obj); 1479 } 1480 1481 template <class ELFT> void ELFDumper<ELFT>::printHashHistogram() { 1482 ELFDumperStyle->printHashHistogram(Obj); 1483 } 1484 1485 template <class ELFT> void ELFDumper<ELFT>::printNotes() { 1486 ELFDumperStyle->printNotes(Obj); 1487 } 1488 1489 #define LLVM_READOBJ_TYPE_CASE(name) \ 1490 case DT_##name: return #name 1491 1492 static const char *getTypeString(unsigned Arch, uint64_t Type) { 1493 switch (Arch) { 1494 case EM_HEXAGON: 1495 switch (Type) { 1496 LLVM_READOBJ_TYPE_CASE(HEXAGON_SYMSZ); 1497 LLVM_READOBJ_TYPE_CASE(HEXAGON_VER); 1498 LLVM_READOBJ_TYPE_CASE(HEXAGON_PLT); 1499 } 1500 case EM_MIPS: 1501 switch (Type) { 1502 LLVM_READOBJ_TYPE_CASE(MIPS_RLD_MAP_REL); 1503 LLVM_READOBJ_TYPE_CASE(MIPS_RLD_VERSION); 1504 LLVM_READOBJ_TYPE_CASE(MIPS_FLAGS); 1505 LLVM_READOBJ_TYPE_CASE(MIPS_BASE_ADDRESS); 1506 LLVM_READOBJ_TYPE_CASE(MIPS_LOCAL_GOTNO); 1507 LLVM_READOBJ_TYPE_CASE(MIPS_SYMTABNO); 1508 LLVM_READOBJ_TYPE_CASE(MIPS_UNREFEXTNO); 1509 LLVM_READOBJ_TYPE_CASE(MIPS_GOTSYM); 1510 LLVM_READOBJ_TYPE_CASE(MIPS_RLD_MAP); 1511 LLVM_READOBJ_TYPE_CASE(MIPS_PLTGOT); 1512 LLVM_READOBJ_TYPE_CASE(MIPS_OPTIONS); 1513 } 1514 } 1515 switch (Type) { 1516 LLVM_READOBJ_TYPE_CASE(BIND_NOW); 1517 LLVM_READOBJ_TYPE_CASE(DEBUG); 1518 LLVM_READOBJ_TYPE_CASE(FINI); 1519 LLVM_READOBJ_TYPE_CASE(FINI_ARRAY); 1520 LLVM_READOBJ_TYPE_CASE(FINI_ARRAYSZ); 1521 LLVM_READOBJ_TYPE_CASE(FLAGS); 1522 LLVM_READOBJ_TYPE_CASE(FLAGS_1); 1523 LLVM_READOBJ_TYPE_CASE(HASH); 1524 LLVM_READOBJ_TYPE_CASE(INIT); 1525 LLVM_READOBJ_TYPE_CASE(INIT_ARRAY); 1526 LLVM_READOBJ_TYPE_CASE(INIT_ARRAYSZ); 1527 LLVM_READOBJ_TYPE_CASE(PREINIT_ARRAY); 1528 LLVM_READOBJ_TYPE_CASE(PREINIT_ARRAYSZ); 1529 LLVM_READOBJ_TYPE_CASE(JMPREL); 1530 LLVM_READOBJ_TYPE_CASE(NEEDED); 1531 LLVM_READOBJ_TYPE_CASE(NULL); 1532 LLVM_READOBJ_TYPE_CASE(PLTGOT); 1533 LLVM_READOBJ_TYPE_CASE(PLTREL); 1534 LLVM_READOBJ_TYPE_CASE(PLTRELSZ); 1535 LLVM_READOBJ_TYPE_CASE(REL); 1536 LLVM_READOBJ_TYPE_CASE(RELA); 1537 LLVM_READOBJ_TYPE_CASE(RELENT); 1538 LLVM_READOBJ_TYPE_CASE(RELSZ); 1539 LLVM_READOBJ_TYPE_CASE(RELAENT); 1540 LLVM_READOBJ_TYPE_CASE(RELASZ); 1541 LLVM_READOBJ_TYPE_CASE(RPATH); 1542 LLVM_READOBJ_TYPE_CASE(RUNPATH); 1543 LLVM_READOBJ_TYPE_CASE(SONAME); 1544 LLVM_READOBJ_TYPE_CASE(STRSZ); 1545 LLVM_READOBJ_TYPE_CASE(STRTAB); 1546 LLVM_READOBJ_TYPE_CASE(SYMBOLIC); 1547 LLVM_READOBJ_TYPE_CASE(SYMENT); 1548 LLVM_READOBJ_TYPE_CASE(SYMTAB); 1549 LLVM_READOBJ_TYPE_CASE(TEXTREL); 1550 LLVM_READOBJ_TYPE_CASE(VERDEF); 1551 LLVM_READOBJ_TYPE_CASE(VERDEFNUM); 1552 LLVM_READOBJ_TYPE_CASE(VERNEED); 1553 LLVM_READOBJ_TYPE_CASE(VERNEEDNUM); 1554 LLVM_READOBJ_TYPE_CASE(VERSYM); 1555 LLVM_READOBJ_TYPE_CASE(RELACOUNT); 1556 LLVM_READOBJ_TYPE_CASE(RELCOUNT); 1557 LLVM_READOBJ_TYPE_CASE(GNU_HASH); 1558 LLVM_READOBJ_TYPE_CASE(TLSDESC_PLT); 1559 LLVM_READOBJ_TYPE_CASE(TLSDESC_GOT); 1560 LLVM_READOBJ_TYPE_CASE(AUXILIARY); 1561 LLVM_READOBJ_TYPE_CASE(FILTER); 1562 default: return "unknown"; 1563 } 1564 } 1565 1566 #undef LLVM_READOBJ_TYPE_CASE 1567 1568 #define LLVM_READOBJ_DT_FLAG_ENT(prefix, enum) \ 1569 { #enum, prefix##_##enum } 1570 1571 static const EnumEntry<unsigned> ElfDynamicDTFlags[] = { 1572 LLVM_READOBJ_DT_FLAG_ENT(DF, ORIGIN), 1573 LLVM_READOBJ_DT_FLAG_ENT(DF, SYMBOLIC), 1574 LLVM_READOBJ_DT_FLAG_ENT(DF, TEXTREL), 1575 LLVM_READOBJ_DT_FLAG_ENT(DF, BIND_NOW), 1576 LLVM_READOBJ_DT_FLAG_ENT(DF, STATIC_TLS) 1577 }; 1578 1579 static const EnumEntry<unsigned> ElfDynamicDTFlags1[] = { 1580 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOW), 1581 LLVM_READOBJ_DT_FLAG_ENT(DF_1, GLOBAL), 1582 LLVM_READOBJ_DT_FLAG_ENT(DF_1, GROUP), 1583 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODELETE), 1584 LLVM_READOBJ_DT_FLAG_ENT(DF_1, LOADFLTR), 1585 LLVM_READOBJ_DT_FLAG_ENT(DF_1, INITFIRST), 1586 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOOPEN), 1587 LLVM_READOBJ_DT_FLAG_ENT(DF_1, ORIGIN), 1588 LLVM_READOBJ_DT_FLAG_ENT(DF_1, DIRECT), 1589 LLVM_READOBJ_DT_FLAG_ENT(DF_1, TRANS), 1590 LLVM_READOBJ_DT_FLAG_ENT(DF_1, INTERPOSE), 1591 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODEFLIB), 1592 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODUMP), 1593 LLVM_READOBJ_DT_FLAG_ENT(DF_1, CONFALT), 1594 LLVM_READOBJ_DT_FLAG_ENT(DF_1, ENDFILTEE), 1595 LLVM_READOBJ_DT_FLAG_ENT(DF_1, DISPRELDNE), 1596 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODIRECT), 1597 LLVM_READOBJ_DT_FLAG_ENT(DF_1, IGNMULDEF), 1598 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOKSYMS), 1599 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOHDR), 1600 LLVM_READOBJ_DT_FLAG_ENT(DF_1, EDITED), 1601 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NORELOC), 1602 LLVM_READOBJ_DT_FLAG_ENT(DF_1, SYMINTPOSE), 1603 LLVM_READOBJ_DT_FLAG_ENT(DF_1, GLOBAUDIT), 1604 LLVM_READOBJ_DT_FLAG_ENT(DF_1, SINGLETON) 1605 }; 1606 1607 static const EnumEntry<unsigned> ElfDynamicDTMipsFlags[] = { 1608 LLVM_READOBJ_DT_FLAG_ENT(RHF, NONE), 1609 LLVM_READOBJ_DT_FLAG_ENT(RHF, QUICKSTART), 1610 LLVM_READOBJ_DT_FLAG_ENT(RHF, NOTPOT), 1611 LLVM_READOBJ_DT_FLAG_ENT(RHS, NO_LIBRARY_REPLACEMENT), 1612 LLVM_READOBJ_DT_FLAG_ENT(RHF, NO_MOVE), 1613 LLVM_READOBJ_DT_FLAG_ENT(RHF, SGI_ONLY), 1614 LLVM_READOBJ_DT_FLAG_ENT(RHF, GUARANTEE_INIT), 1615 LLVM_READOBJ_DT_FLAG_ENT(RHF, DELTA_C_PLUS_PLUS), 1616 LLVM_READOBJ_DT_FLAG_ENT(RHF, GUARANTEE_START_INIT), 1617 LLVM_READOBJ_DT_FLAG_ENT(RHF, PIXIE), 1618 LLVM_READOBJ_DT_FLAG_ENT(RHF, DEFAULT_DELAY_LOAD), 1619 LLVM_READOBJ_DT_FLAG_ENT(RHF, REQUICKSTART), 1620 LLVM_READOBJ_DT_FLAG_ENT(RHF, REQUICKSTARTED), 1621 LLVM_READOBJ_DT_FLAG_ENT(RHF, CORD), 1622 LLVM_READOBJ_DT_FLAG_ENT(RHF, NO_UNRES_UNDEF), 1623 LLVM_READOBJ_DT_FLAG_ENT(RHF, RLD_ORDER_SAFE) 1624 }; 1625 1626 #undef LLVM_READOBJ_DT_FLAG_ENT 1627 1628 template <typename T, typename TFlag> 1629 void printFlags(T Value, ArrayRef<EnumEntry<TFlag>> Flags, raw_ostream &OS) { 1630 using FlagEntry = EnumEntry<TFlag>; 1631 using FlagVector = SmallVector<FlagEntry, 10>; 1632 FlagVector SetFlags; 1633 1634 for (const auto &Flag : Flags) { 1635 if (Flag.Value == 0) 1636 continue; 1637 1638 if ((Value & Flag.Value) == Flag.Value) 1639 SetFlags.push_back(Flag); 1640 } 1641 1642 for (const auto &Flag : SetFlags) { 1643 OS << Flag.Name << " "; 1644 } 1645 } 1646 1647 template <class ELFT> 1648 StringRef ELFDumper<ELFT>::getDynamicString(uint64_t Value) const { 1649 if (Value >= DynamicStringTable.size()) 1650 reportError("Invalid dynamic string table reference"); 1651 return StringRef(DynamicStringTable.data() + Value); 1652 } 1653 1654 static void printLibrary(raw_ostream &OS, const Twine &Tag, const Twine &Name) { 1655 OS << Tag << ": [" << Name << "]"; 1656 } 1657 1658 template <class ELFT> 1659 void ELFDumper<ELFT>::printValue(uint64_t Type, uint64_t Value) { 1660 raw_ostream &OS = W.getOStream(); 1661 const char* ConvChar = (opts::Output == opts::GNU) ? "0x%" PRIx64 : "0x%" PRIX64; 1662 switch (Type) { 1663 case DT_PLTREL: 1664 if (Value == DT_REL) { 1665 OS << "REL"; 1666 break; 1667 } else if (Value == DT_RELA) { 1668 OS << "RELA"; 1669 break; 1670 } 1671 LLVM_FALLTHROUGH; 1672 case DT_PLTGOT: 1673 case DT_HASH: 1674 case DT_STRTAB: 1675 case DT_SYMTAB: 1676 case DT_RELA: 1677 case DT_INIT: 1678 case DT_FINI: 1679 case DT_REL: 1680 case DT_JMPREL: 1681 case DT_INIT_ARRAY: 1682 case DT_FINI_ARRAY: 1683 case DT_PREINIT_ARRAY: 1684 case DT_DEBUG: 1685 case DT_VERDEF: 1686 case DT_VERNEED: 1687 case DT_VERSYM: 1688 case DT_GNU_HASH: 1689 case DT_NULL: 1690 case DT_MIPS_BASE_ADDRESS: 1691 case DT_MIPS_GOTSYM: 1692 case DT_MIPS_RLD_MAP: 1693 case DT_MIPS_RLD_MAP_REL: 1694 case DT_MIPS_PLTGOT: 1695 case DT_MIPS_OPTIONS: 1696 OS << format(ConvChar, Value); 1697 break; 1698 case DT_RELACOUNT: 1699 case DT_RELCOUNT: 1700 case DT_VERDEFNUM: 1701 case DT_VERNEEDNUM: 1702 case DT_MIPS_RLD_VERSION: 1703 case DT_MIPS_LOCAL_GOTNO: 1704 case DT_MIPS_SYMTABNO: 1705 case DT_MIPS_UNREFEXTNO: 1706 OS << Value; 1707 break; 1708 case DT_PLTRELSZ: 1709 case DT_RELASZ: 1710 case DT_RELAENT: 1711 case DT_STRSZ: 1712 case DT_SYMENT: 1713 case DT_RELSZ: 1714 case DT_RELENT: 1715 case DT_INIT_ARRAYSZ: 1716 case DT_FINI_ARRAYSZ: 1717 case DT_PREINIT_ARRAYSZ: 1718 OS << Value << " (bytes)"; 1719 break; 1720 case DT_NEEDED: 1721 printLibrary(OS, "Shared library", getDynamicString(Value)); 1722 break; 1723 case DT_SONAME: 1724 printLibrary(OS, "Library soname", getDynamicString(Value)); 1725 break; 1726 case DT_AUXILIARY: 1727 printLibrary(OS, "Auxiliary library", getDynamicString(Value)); 1728 break; 1729 case DT_FILTER: 1730 printLibrary(OS, "Filter library", getDynamicString(Value)); 1731 break; 1732 case DT_RPATH: 1733 case DT_RUNPATH: 1734 OS << getDynamicString(Value); 1735 break; 1736 case DT_MIPS_FLAGS: 1737 printFlags(Value, makeArrayRef(ElfDynamicDTMipsFlags), OS); 1738 break; 1739 case DT_FLAGS: 1740 printFlags(Value, makeArrayRef(ElfDynamicDTFlags), OS); 1741 break; 1742 case DT_FLAGS_1: 1743 printFlags(Value, makeArrayRef(ElfDynamicDTFlags1), OS); 1744 break; 1745 default: 1746 OS << format(ConvChar, Value); 1747 break; 1748 } 1749 } 1750 1751 template<class ELFT> 1752 void ELFDumper<ELFT>::printUnwindInfo() { 1753 W.startLine() << "UnwindInfo not implemented.\n"; 1754 } 1755 1756 namespace { 1757 1758 template <> void ELFDumper<ELFType<support::little, false>>::printUnwindInfo() { 1759 const unsigned Machine = Obj->getHeader()->e_machine; 1760 if (Machine == EM_ARM) { 1761 ARM::EHABI::PrinterContext<ELFType<support::little, false>> Ctx( 1762 W, Obj, DotSymtabSec); 1763 return Ctx.PrintUnwindInformation(); 1764 } 1765 W.startLine() << "UnwindInfo not implemented.\n"; 1766 } 1767 1768 } // end anonymous namespace 1769 1770 template<class ELFT> 1771 void ELFDumper<ELFT>::printDynamicTable() { 1772 auto I = dynamic_table().begin(); 1773 auto E = dynamic_table().end(); 1774 1775 if (I == E) 1776 return; 1777 1778 --E; 1779 while (I != E && E->getTag() == ELF::DT_NULL) 1780 --E; 1781 if (E->getTag() != ELF::DT_NULL) 1782 ++E; 1783 ++E; 1784 1785 ptrdiff_t Total = std::distance(I, E); 1786 if (Total == 0) 1787 return; 1788 1789 raw_ostream &OS = W.getOStream(); 1790 W.startLine() << "DynamicSection [ (" << Total << " entries)\n"; 1791 1792 bool Is64 = ELFT::Is64Bits; 1793 1794 W.startLine() 1795 << " Tag" << (Is64 ? " " : " ") << "Type" 1796 << " " << "Name/Value\n"; 1797 while (I != E) { 1798 const Elf_Dyn &Entry = *I; 1799 uintX_t Tag = Entry.getTag(); 1800 ++I; 1801 W.startLine() << " " << format_hex(Tag, Is64 ? 18 : 10, opts::Output != opts::GNU) << " " 1802 << format("%-21s", getTypeString(Obj->getHeader()->e_machine, Tag)); 1803 printValue(Tag, Entry.getVal()); 1804 OS << "\n"; 1805 } 1806 1807 W.startLine() << "]\n"; 1808 } 1809 1810 template<class ELFT> 1811 void ELFDumper<ELFT>::printNeededLibraries() { 1812 ListScope D(W, "NeededLibraries"); 1813 1814 using LibsTy = std::vector<StringRef>; 1815 LibsTy Libs; 1816 1817 for (const auto &Entry : dynamic_table()) 1818 if (Entry.d_tag == ELF::DT_NEEDED) 1819 Libs.push_back(getDynamicString(Entry.d_un.d_val)); 1820 1821 std::stable_sort(Libs.begin(), Libs.end()); 1822 1823 for (const auto &L : Libs) { 1824 outs() << " " << L << "\n"; 1825 } 1826 } 1827 1828 1829 template <typename ELFT> 1830 void ELFDumper<ELFT>::printHashTable() { 1831 DictScope D(W, "HashTable"); 1832 if (!HashTable) 1833 return; 1834 W.printNumber("Num Buckets", HashTable->nbucket); 1835 W.printNumber("Num Chains", HashTable->nchain); 1836 W.printList("Buckets", HashTable->buckets()); 1837 W.printList("Chains", HashTable->chains()); 1838 } 1839 1840 template <typename ELFT> 1841 void ELFDumper<ELFT>::printGnuHashTable() { 1842 DictScope D(W, "GnuHashTable"); 1843 if (!GnuHashTable) 1844 return; 1845 W.printNumber("Num Buckets", GnuHashTable->nbuckets); 1846 W.printNumber("First Hashed Symbol Index", GnuHashTable->symndx); 1847 W.printNumber("Num Mask Words", GnuHashTable->maskwords); 1848 W.printNumber("Shift Count", GnuHashTable->shift2); 1849 W.printHexList("Bloom Filter", GnuHashTable->filter()); 1850 W.printList("Buckets", GnuHashTable->buckets()); 1851 Elf_Sym_Range Syms = dynamic_symbols(); 1852 unsigned NumSyms = std::distance(Syms.begin(), Syms.end()); 1853 if (!NumSyms) 1854 reportError("No dynamic symbol section"); 1855 W.printHexList("Values", GnuHashTable->values(NumSyms)); 1856 } 1857 1858 template <typename ELFT> void ELFDumper<ELFT>::printLoadName() { 1859 outs() << "LoadName: " << SOName << '\n'; 1860 } 1861 1862 template <class ELFT> 1863 void ELFDumper<ELFT>::printAttributes() { 1864 W.startLine() << "Attributes not implemented.\n"; 1865 } 1866 1867 namespace { 1868 1869 template <> void ELFDumper<ELFType<support::little, false>>::printAttributes() { 1870 if (Obj->getHeader()->e_machine != EM_ARM) { 1871 W.startLine() << "Attributes not implemented.\n"; 1872 return; 1873 } 1874 1875 DictScope BA(W, "BuildAttributes"); 1876 for (const ELFO::Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 1877 if (Sec.sh_type != ELF::SHT_ARM_ATTRIBUTES) 1878 continue; 1879 1880 ArrayRef<uint8_t> Contents = unwrapOrError(Obj->getSectionContents(&Sec)); 1881 if (Contents[0] != ARMBuildAttrs::Format_Version) { 1882 errs() << "unrecognised FormatVersion: 0x" << utohexstr(Contents[0]) 1883 << '\n'; 1884 continue; 1885 } 1886 1887 W.printHex("FormatVersion", Contents[0]); 1888 if (Contents.size() == 1) 1889 continue; 1890 1891 ARMAttributeParser(&W).Parse(Contents, true); 1892 } 1893 } 1894 1895 template <class ELFT> class MipsGOTParser { 1896 public: 1897 TYPEDEF_ELF_TYPES(ELFT) 1898 using GOTEntry = typename ELFO::Elf_Addr; 1899 1900 MipsGOTParser(ELFDumper<ELFT> *Dumper, const ELFO *Obj, 1901 Elf_Dyn_Range DynTable, ScopedPrinter &W); 1902 1903 void parseGOT(); 1904 void parsePLT(); 1905 1906 private: 1907 ELFDumper<ELFT> *Dumper; 1908 const ELFO *Obj; 1909 ScopedPrinter &W; 1910 Optional<uint64_t> DtPltGot; 1911 Optional<uint64_t> DtLocalGotNum; 1912 Optional<uint64_t> DtGotSym; 1913 Optional<uint64_t> DtMipsPltGot; 1914 Optional<uint64_t> DtJmpRel; 1915 1916 std::size_t getGOTTotal(ArrayRef<uint8_t> GOT) const; 1917 const GOTEntry *makeGOTIter(ArrayRef<uint8_t> GOT, std::size_t EntryNum); 1918 1919 void printGotEntry(uint64_t GotAddr, const GOTEntry *BeginIt, 1920 const GOTEntry *It); 1921 void printGlobalGotEntry(uint64_t GotAddr, const GOTEntry *BeginIt, 1922 const GOTEntry *It, const Elf_Sym *Sym, 1923 StringRef StrTable, bool IsDynamic); 1924 void printPLTEntry(uint64_t PLTAddr, const GOTEntry *BeginIt, 1925 const GOTEntry *It, StringRef Purpose); 1926 void printPLTEntry(uint64_t PLTAddr, const GOTEntry *BeginIt, 1927 const GOTEntry *It, StringRef StrTable, 1928 const Elf_Sym *Sym); 1929 }; 1930 1931 } // end anonymous namespace 1932 1933 template <class ELFT> 1934 MipsGOTParser<ELFT>::MipsGOTParser(ELFDumper<ELFT> *Dumper, const ELFO *Obj, 1935 Elf_Dyn_Range DynTable, ScopedPrinter &W) 1936 : Dumper(Dumper), Obj(Obj), W(W) { 1937 for (const auto &Entry : DynTable) { 1938 switch (Entry.getTag()) { 1939 case ELF::DT_PLTGOT: 1940 DtPltGot = Entry.getVal(); 1941 break; 1942 case ELF::DT_MIPS_LOCAL_GOTNO: 1943 DtLocalGotNum = Entry.getVal(); 1944 break; 1945 case ELF::DT_MIPS_GOTSYM: 1946 DtGotSym = Entry.getVal(); 1947 break; 1948 case ELF::DT_MIPS_PLTGOT: 1949 DtMipsPltGot = Entry.getVal(); 1950 break; 1951 case ELF::DT_JMPREL: 1952 DtJmpRel = Entry.getVal(); 1953 break; 1954 } 1955 } 1956 } 1957 1958 template <class ELFT> void MipsGOTParser<ELFT>::parseGOT() { 1959 // See "Global Offset Table" in Chapter 5 in the following document 1960 // for detailed GOT description. 1961 // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf 1962 if (!DtPltGot) { 1963 W.startLine() << "Cannot find PLTGOT dynamic table tag.\n"; 1964 return; 1965 } 1966 if (!DtLocalGotNum) { 1967 W.startLine() << "Cannot find MIPS_LOCAL_GOTNO dynamic table tag.\n"; 1968 return; 1969 } 1970 if (!DtGotSym) { 1971 W.startLine() << "Cannot find MIPS_GOTSYM dynamic table tag.\n"; 1972 return; 1973 } 1974 1975 StringRef StrTable = Dumper->getDynamicStringTable(); 1976 const Elf_Sym *DynSymBegin = Dumper->dynamic_symbols().begin(); 1977 const Elf_Sym *DynSymEnd = Dumper->dynamic_symbols().end(); 1978 std::size_t DynSymTotal = std::size_t(std::distance(DynSymBegin, DynSymEnd)); 1979 1980 if (*DtGotSym > DynSymTotal) 1981 report_fatal_error("MIPS_GOTSYM exceeds a number of dynamic symbols"); 1982 1983 std::size_t GlobalGotNum = DynSymTotal - *DtGotSym; 1984 1985 if (*DtLocalGotNum + GlobalGotNum == 0) { 1986 W.startLine() << "GOT is empty.\n"; 1987 return; 1988 } 1989 1990 const Elf_Shdr *GOTShdr = findNotEmptySectionByAddress(Obj, *DtPltGot); 1991 if (!GOTShdr) 1992 report_fatal_error("There is no not empty GOT section at 0x" + 1993 Twine::utohexstr(*DtPltGot)); 1994 1995 ArrayRef<uint8_t> GOT = unwrapOrError(Obj->getSectionContents(GOTShdr)); 1996 1997 if (*DtLocalGotNum + GlobalGotNum > getGOTTotal(GOT)) 1998 report_fatal_error("Number of GOT entries exceeds the size of GOT section"); 1999 2000 const GOTEntry *GotBegin = makeGOTIter(GOT, 0); 2001 const GOTEntry *GotLocalEnd = makeGOTIter(GOT, *DtLocalGotNum); 2002 const GOTEntry *It = GotBegin; 2003 2004 DictScope GS(W, "Primary GOT"); 2005 2006 W.printHex("Canonical gp value", GOTShdr->sh_addr + 0x7ff0); 2007 { 2008 ListScope RS(W, "Reserved entries"); 2009 2010 { 2011 DictScope D(W, "Entry"); 2012 printGotEntry(GOTShdr->sh_addr, GotBegin, It++); 2013 W.printString("Purpose", StringRef("Lazy resolver")); 2014 } 2015 2016 if (It != GotLocalEnd && (*It >> (sizeof(GOTEntry) * 8 - 1)) != 0) { 2017 DictScope D(W, "Entry"); 2018 printGotEntry(GOTShdr->sh_addr, GotBegin, It++); 2019 W.printString("Purpose", StringRef("Module pointer (GNU extension)")); 2020 } 2021 } 2022 { 2023 ListScope LS(W, "Local entries"); 2024 for (; It != GotLocalEnd; ++It) { 2025 DictScope D(W, "Entry"); 2026 printGotEntry(GOTShdr->sh_addr, GotBegin, It); 2027 } 2028 } 2029 { 2030 ListScope GS(W, "Global entries"); 2031 2032 const GOTEntry *GotGlobalEnd = 2033 makeGOTIter(GOT, *DtLocalGotNum + GlobalGotNum); 2034 const Elf_Sym *GotDynSym = DynSymBegin + *DtGotSym; 2035 for (; It != GotGlobalEnd; ++It) { 2036 DictScope D(W, "Entry"); 2037 printGlobalGotEntry(GOTShdr->sh_addr, GotBegin, It, GotDynSym++, StrTable, 2038 true); 2039 } 2040 } 2041 2042 std::size_t SpecGotNum = getGOTTotal(GOT) - *DtLocalGotNum - GlobalGotNum; 2043 W.printNumber("Number of TLS and multi-GOT entries", uint64_t(SpecGotNum)); 2044 } 2045 2046 template <class ELFT> void MipsGOTParser<ELFT>::parsePLT() { 2047 if (!DtMipsPltGot) { 2048 W.startLine() << "Cannot find MIPS_PLTGOT dynamic table tag.\n"; 2049 return; 2050 } 2051 if (!DtJmpRel) { 2052 W.startLine() << "Cannot find JMPREL dynamic table tag.\n"; 2053 return; 2054 } 2055 2056 const Elf_Shdr *PLTShdr = findNotEmptySectionByAddress(Obj, *DtMipsPltGot); 2057 if (!PLTShdr) 2058 report_fatal_error("There is no not empty PLTGOT section at 0x " + 2059 Twine::utohexstr(*DtMipsPltGot)); 2060 ArrayRef<uint8_t> PLT = unwrapOrError(Obj->getSectionContents(PLTShdr)); 2061 2062 const Elf_Shdr *PLTRelShdr = findNotEmptySectionByAddress(Obj, *DtJmpRel); 2063 if (!PLTRelShdr) 2064 report_fatal_error("There is no not empty RELPLT section at 0x" + 2065 Twine::utohexstr(*DtJmpRel)); 2066 const Elf_Shdr *SymTable = 2067 unwrapOrError(Obj->getSection(PLTRelShdr->sh_link)); 2068 StringRef StrTable = unwrapOrError(Obj->getStringTableForSymtab(*SymTable)); 2069 2070 const GOTEntry *PLTBegin = makeGOTIter(PLT, 0); 2071 const GOTEntry *PLTEnd = makeGOTIter(PLT, getGOTTotal(PLT)); 2072 const GOTEntry *It = PLTBegin; 2073 2074 DictScope GS(W, "PLT GOT"); 2075 { 2076 ListScope RS(W, "Reserved entries"); 2077 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It++, "PLT lazy resolver"); 2078 if (It != PLTEnd) 2079 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It++, "Module pointer"); 2080 } 2081 { 2082 ListScope GS(W, "Entries"); 2083 2084 switch (PLTRelShdr->sh_type) { 2085 case ELF::SHT_REL: 2086 for (const Elf_Rel &Rel : unwrapOrError(Obj->rels(PLTRelShdr))) { 2087 const Elf_Sym *Sym = 2088 unwrapOrError(Obj->getRelocationSymbol(&Rel, SymTable)); 2089 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It, StrTable, Sym); 2090 if (++It == PLTEnd) 2091 break; 2092 } 2093 break; 2094 case ELF::SHT_RELA: 2095 for (const Elf_Rela &Rel : unwrapOrError(Obj->relas(PLTRelShdr))) { 2096 const Elf_Sym *Sym = 2097 unwrapOrError(Obj->getRelocationSymbol(&Rel, SymTable)); 2098 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It, StrTable, Sym); 2099 if (++It == PLTEnd) 2100 break; 2101 } 2102 break; 2103 } 2104 } 2105 } 2106 2107 template <class ELFT> 2108 std::size_t MipsGOTParser<ELFT>::getGOTTotal(ArrayRef<uint8_t> GOT) const { 2109 return GOT.size() / sizeof(GOTEntry); 2110 } 2111 2112 template <class ELFT> 2113 const typename MipsGOTParser<ELFT>::GOTEntry * 2114 MipsGOTParser<ELFT>::makeGOTIter(ArrayRef<uint8_t> GOT, std::size_t EntryNum) { 2115 const char *Data = reinterpret_cast<const char *>(GOT.data()); 2116 return reinterpret_cast<const GOTEntry *>(Data + EntryNum * sizeof(GOTEntry)); 2117 } 2118 2119 template <class ELFT> 2120 void MipsGOTParser<ELFT>::printGotEntry(uint64_t GotAddr, 2121 const GOTEntry *BeginIt, 2122 const GOTEntry *It) { 2123 int64_t Offset = std::distance(BeginIt, It) * sizeof(GOTEntry); 2124 W.printHex("Address", GotAddr + Offset); 2125 W.printNumber("Access", Offset - 0x7ff0); 2126 W.printHex("Initial", *It); 2127 } 2128 2129 template <class ELFT> 2130 void MipsGOTParser<ELFT>::printGlobalGotEntry( 2131 uint64_t GotAddr, const GOTEntry *BeginIt, const GOTEntry *It, 2132 const Elf_Sym *Sym, StringRef StrTable, bool IsDynamic) { 2133 printGotEntry(GotAddr, BeginIt, It); 2134 2135 W.printHex("Value", Sym->st_value); 2136 W.printEnum("Type", Sym->getType(), makeArrayRef(ElfSymbolTypes)); 2137 2138 unsigned SectionIndex = 0; 2139 StringRef SectionName; 2140 getSectionNameIndex(*Obj, Sym, Dumper->dynamic_symbols().begin(), 2141 Dumper->getShndxTable(), SectionName, SectionIndex); 2142 W.printHex("Section", SectionName, SectionIndex); 2143 2144 std::string FullSymbolName = 2145 Dumper->getFullSymbolName(Sym, StrTable, IsDynamic); 2146 W.printNumber("Name", FullSymbolName, Sym->st_name); 2147 } 2148 2149 template <class ELFT> 2150 void MipsGOTParser<ELFT>::printPLTEntry(uint64_t PLTAddr, 2151 const GOTEntry *BeginIt, 2152 const GOTEntry *It, StringRef Purpose) { 2153 DictScope D(W, "Entry"); 2154 int64_t Offset = std::distance(BeginIt, It) * sizeof(GOTEntry); 2155 W.printHex("Address", PLTAddr + Offset); 2156 W.printHex("Initial", *It); 2157 W.printString("Purpose", Purpose); 2158 } 2159 2160 template <class ELFT> 2161 void MipsGOTParser<ELFT>::printPLTEntry(uint64_t PLTAddr, 2162 const GOTEntry *BeginIt, 2163 const GOTEntry *It, StringRef StrTable, 2164 const Elf_Sym *Sym) { 2165 DictScope D(W, "Entry"); 2166 int64_t Offset = std::distance(BeginIt, It) * sizeof(GOTEntry); 2167 W.printHex("Address", PLTAddr + Offset); 2168 W.printHex("Initial", *It); 2169 W.printHex("Value", Sym->st_value); 2170 W.printEnum("Type", Sym->getType(), makeArrayRef(ElfSymbolTypes)); 2171 2172 unsigned SectionIndex = 0; 2173 StringRef SectionName; 2174 getSectionNameIndex(*Obj, Sym, Dumper->dynamic_symbols().begin(), 2175 Dumper->getShndxTable(), SectionName, SectionIndex); 2176 W.printHex("Section", SectionName, SectionIndex); 2177 2178 std::string FullSymbolName = Dumper->getFullSymbolName(Sym, StrTable, true); 2179 W.printNumber("Name", FullSymbolName, Sym->st_name); 2180 } 2181 2182 template <class ELFT> void ELFDumper<ELFT>::printMipsPLTGOT() { 2183 if (Obj->getHeader()->e_machine != EM_MIPS) { 2184 W.startLine() << "MIPS PLT GOT is available for MIPS targets only.\n"; 2185 return; 2186 } 2187 2188 MipsGOTParser<ELFT> GOTParser(this, Obj, dynamic_table(), W); 2189 GOTParser.parseGOT(); 2190 GOTParser.parsePLT(); 2191 } 2192 2193 static const EnumEntry<unsigned> ElfMipsISAExtType[] = { 2194 {"None", Mips::AFL_EXT_NONE}, 2195 {"Broadcom SB-1", Mips::AFL_EXT_SB1}, 2196 {"Cavium Networks Octeon", Mips::AFL_EXT_OCTEON}, 2197 {"Cavium Networks Octeon2", Mips::AFL_EXT_OCTEON2}, 2198 {"Cavium Networks OcteonP", Mips::AFL_EXT_OCTEONP}, 2199 {"Cavium Networks Octeon3", Mips::AFL_EXT_OCTEON3}, 2200 {"LSI R4010", Mips::AFL_EXT_4010}, 2201 {"Loongson 2E", Mips::AFL_EXT_LOONGSON_2E}, 2202 {"Loongson 2F", Mips::AFL_EXT_LOONGSON_2F}, 2203 {"Loongson 3A", Mips::AFL_EXT_LOONGSON_3A}, 2204 {"MIPS R4650", Mips::AFL_EXT_4650}, 2205 {"MIPS R5900", Mips::AFL_EXT_5900}, 2206 {"MIPS R10000", Mips::AFL_EXT_10000}, 2207 {"NEC VR4100", Mips::AFL_EXT_4100}, 2208 {"NEC VR4111/VR4181", Mips::AFL_EXT_4111}, 2209 {"NEC VR4120", Mips::AFL_EXT_4120}, 2210 {"NEC VR5400", Mips::AFL_EXT_5400}, 2211 {"NEC VR5500", Mips::AFL_EXT_5500}, 2212 {"RMI Xlr", Mips::AFL_EXT_XLR}, 2213 {"Toshiba R3900", Mips::AFL_EXT_3900} 2214 }; 2215 2216 static const EnumEntry<unsigned> ElfMipsASEFlags[] = { 2217 {"DSP", Mips::AFL_ASE_DSP}, 2218 {"DSPR2", Mips::AFL_ASE_DSPR2}, 2219 {"Enhanced VA Scheme", Mips::AFL_ASE_EVA}, 2220 {"MCU", Mips::AFL_ASE_MCU}, 2221 {"MDMX", Mips::AFL_ASE_MDMX}, 2222 {"MIPS-3D", Mips::AFL_ASE_MIPS3D}, 2223 {"MT", Mips::AFL_ASE_MT}, 2224 {"SmartMIPS", Mips::AFL_ASE_SMARTMIPS}, 2225 {"VZ", Mips::AFL_ASE_VIRT}, 2226 {"MSA", Mips::AFL_ASE_MSA}, 2227 {"MIPS16", Mips::AFL_ASE_MIPS16}, 2228 {"microMIPS", Mips::AFL_ASE_MICROMIPS}, 2229 {"XPA", Mips::AFL_ASE_XPA} 2230 }; 2231 2232 static const EnumEntry<unsigned> ElfMipsFpABIType[] = { 2233 {"Hard or soft float", Mips::Val_GNU_MIPS_ABI_FP_ANY}, 2234 {"Hard float (double precision)", Mips::Val_GNU_MIPS_ABI_FP_DOUBLE}, 2235 {"Hard float (single precision)", Mips::Val_GNU_MIPS_ABI_FP_SINGLE}, 2236 {"Soft float", Mips::Val_GNU_MIPS_ABI_FP_SOFT}, 2237 {"Hard float (MIPS32r2 64-bit FPU 12 callee-saved)", 2238 Mips::Val_GNU_MIPS_ABI_FP_OLD_64}, 2239 {"Hard float (32-bit CPU, Any FPU)", Mips::Val_GNU_MIPS_ABI_FP_XX}, 2240 {"Hard float (32-bit CPU, 64-bit FPU)", Mips::Val_GNU_MIPS_ABI_FP_64}, 2241 {"Hard float compat (32-bit CPU, 64-bit FPU)", 2242 Mips::Val_GNU_MIPS_ABI_FP_64A} 2243 }; 2244 2245 static const EnumEntry<unsigned> ElfMipsFlags1[] { 2246 {"ODDSPREG", Mips::AFL_FLAGS1_ODDSPREG}, 2247 }; 2248 2249 static int getMipsRegisterSize(uint8_t Flag) { 2250 switch (Flag) { 2251 case Mips::AFL_REG_NONE: 2252 return 0; 2253 case Mips::AFL_REG_32: 2254 return 32; 2255 case Mips::AFL_REG_64: 2256 return 64; 2257 case Mips::AFL_REG_128: 2258 return 128; 2259 default: 2260 return -1; 2261 } 2262 } 2263 2264 template <class ELFT> void ELFDumper<ELFT>::printMipsABIFlags() { 2265 const Elf_Shdr *Shdr = findSectionByName(*Obj, ".MIPS.abiflags"); 2266 if (!Shdr) { 2267 W.startLine() << "There is no .MIPS.abiflags section in the file.\n"; 2268 return; 2269 } 2270 ArrayRef<uint8_t> Sec = unwrapOrError(Obj->getSectionContents(Shdr)); 2271 if (Sec.size() != sizeof(Elf_Mips_ABIFlags<ELFT>)) { 2272 W.startLine() << "The .MIPS.abiflags section has a wrong size.\n"; 2273 return; 2274 } 2275 2276 auto *Flags = reinterpret_cast<const Elf_Mips_ABIFlags<ELFT> *>(Sec.data()); 2277 2278 raw_ostream &OS = W.getOStream(); 2279 DictScope GS(W, "MIPS ABI Flags"); 2280 2281 W.printNumber("Version", Flags->version); 2282 W.startLine() << "ISA: "; 2283 if (Flags->isa_rev <= 1) 2284 OS << format("MIPS%u", Flags->isa_level); 2285 else 2286 OS << format("MIPS%ur%u", Flags->isa_level, Flags->isa_rev); 2287 OS << "\n"; 2288 W.printEnum("ISA Extension", Flags->isa_ext, makeArrayRef(ElfMipsISAExtType)); 2289 W.printFlags("ASEs", Flags->ases, makeArrayRef(ElfMipsASEFlags)); 2290 W.printEnum("FP ABI", Flags->fp_abi, makeArrayRef(ElfMipsFpABIType)); 2291 W.printNumber("GPR size", getMipsRegisterSize(Flags->gpr_size)); 2292 W.printNumber("CPR1 size", getMipsRegisterSize(Flags->cpr1_size)); 2293 W.printNumber("CPR2 size", getMipsRegisterSize(Flags->cpr2_size)); 2294 W.printFlags("Flags 1", Flags->flags1, makeArrayRef(ElfMipsFlags1)); 2295 W.printHex("Flags 2", Flags->flags2); 2296 } 2297 2298 template <class ELFT> 2299 static void printMipsReginfoData(ScopedPrinter &W, 2300 const Elf_Mips_RegInfo<ELFT> &Reginfo) { 2301 W.printHex("GP", Reginfo.ri_gp_value); 2302 W.printHex("General Mask", Reginfo.ri_gprmask); 2303 W.printHex("Co-Proc Mask0", Reginfo.ri_cprmask[0]); 2304 W.printHex("Co-Proc Mask1", Reginfo.ri_cprmask[1]); 2305 W.printHex("Co-Proc Mask2", Reginfo.ri_cprmask[2]); 2306 W.printHex("Co-Proc Mask3", Reginfo.ri_cprmask[3]); 2307 } 2308 2309 template <class ELFT> void ELFDumper<ELFT>::printMipsReginfo() { 2310 const Elf_Shdr *Shdr = findSectionByName(*Obj, ".reginfo"); 2311 if (!Shdr) { 2312 W.startLine() << "There is no .reginfo section in the file.\n"; 2313 return; 2314 } 2315 ArrayRef<uint8_t> Sec = unwrapOrError(Obj->getSectionContents(Shdr)); 2316 if (Sec.size() != sizeof(Elf_Mips_RegInfo<ELFT>)) { 2317 W.startLine() << "The .reginfo section has a wrong size.\n"; 2318 return; 2319 } 2320 2321 DictScope GS(W, "MIPS RegInfo"); 2322 auto *Reginfo = reinterpret_cast<const Elf_Mips_RegInfo<ELFT> *>(Sec.data()); 2323 printMipsReginfoData(W, *Reginfo); 2324 } 2325 2326 template <class ELFT> void ELFDumper<ELFT>::printMipsOptions() { 2327 const Elf_Shdr *Shdr = findSectionByName(*Obj, ".MIPS.options"); 2328 if (!Shdr) { 2329 W.startLine() << "There is no .MIPS.options section in the file.\n"; 2330 return; 2331 } 2332 2333 DictScope GS(W, "MIPS Options"); 2334 2335 ArrayRef<uint8_t> Sec = unwrapOrError(Obj->getSectionContents(Shdr)); 2336 while (!Sec.empty()) { 2337 if (Sec.size() < sizeof(Elf_Mips_Options<ELFT>)) { 2338 W.startLine() << "The .MIPS.options section has a wrong size.\n"; 2339 return; 2340 } 2341 auto *O = reinterpret_cast<const Elf_Mips_Options<ELFT> *>(Sec.data()); 2342 DictScope GS(W, getElfMipsOptionsOdkType(O->kind)); 2343 switch (O->kind) { 2344 case ODK_REGINFO: 2345 printMipsReginfoData(W, O->getRegInfo()); 2346 break; 2347 default: 2348 W.startLine() << "Unsupported MIPS options tag.\n"; 2349 break; 2350 } 2351 Sec = Sec.slice(O->size); 2352 } 2353 } 2354 2355 template <class ELFT> void ELFDumper<ELFT>::printStackMap() const { 2356 const Elf_Shdr *StackMapSection = nullptr; 2357 for (const auto &Sec : unwrapOrError(Obj->sections())) { 2358 StringRef Name = unwrapOrError(Obj->getSectionName(&Sec)); 2359 if (Name == ".llvm_stackmaps") { 2360 StackMapSection = &Sec; 2361 break; 2362 } 2363 } 2364 2365 if (!StackMapSection) 2366 return; 2367 2368 ArrayRef<uint8_t> StackMapContentsArray = 2369 unwrapOrError(Obj->getSectionContents(StackMapSection)); 2370 2371 prettyPrintStackMap(outs(), StackMapV2Parser<ELFT::TargetEndianness>( 2372 StackMapContentsArray)); 2373 } 2374 2375 template <class ELFT> void ELFDumper<ELFT>::printGroupSections() { 2376 ELFDumperStyle->printGroupSections(Obj); 2377 } 2378 2379 static inline void printFields(formatted_raw_ostream &OS, StringRef Str1, 2380 StringRef Str2) { 2381 OS.PadToColumn(2u); 2382 OS << Str1; 2383 OS.PadToColumn(37u); 2384 OS << Str2 << "\n"; 2385 OS.flush(); 2386 } 2387 2388 template <class ELFT> void GNUStyle<ELFT>::printFileHeaders(const ELFO *Obj) { 2389 const Elf_Ehdr *e = Obj->getHeader(); 2390 OS << "ELF Header:\n"; 2391 OS << " Magic: "; 2392 std::string Str; 2393 for (int i = 0; i < ELF::EI_NIDENT; i++) 2394 OS << format(" %02x", static_cast<int>(e->e_ident[i])); 2395 OS << "\n"; 2396 Str = printEnum(e->e_ident[ELF::EI_CLASS], makeArrayRef(ElfClass)); 2397 printFields(OS, "Class:", Str); 2398 Str = printEnum(e->e_ident[ELF::EI_DATA], makeArrayRef(ElfDataEncoding)); 2399 printFields(OS, "Data:", Str); 2400 OS.PadToColumn(2u); 2401 OS << "Version:"; 2402 OS.PadToColumn(37u); 2403 OS << to_hexString(e->e_ident[ELF::EI_VERSION]); 2404 if (e->e_version == ELF::EV_CURRENT) 2405 OS << " (current)"; 2406 OS << "\n"; 2407 Str = printEnum(e->e_ident[ELF::EI_OSABI], makeArrayRef(ElfOSABI)); 2408 printFields(OS, "OS/ABI:", Str); 2409 Str = "0x" + to_hexString(e->e_ident[ELF::EI_ABIVERSION]); 2410 printFields(OS, "ABI Version:", Str); 2411 Str = printEnum(e->e_type, makeArrayRef(ElfObjectFileType)); 2412 printFields(OS, "Type:", Str); 2413 Str = printEnum(e->e_machine, makeArrayRef(ElfMachineType)); 2414 printFields(OS, "Machine:", Str); 2415 Str = "0x" + to_hexString(e->e_version); 2416 printFields(OS, "Version:", Str); 2417 Str = "0x" + to_hexString(e->e_entry); 2418 printFields(OS, "Entry point address:", Str); 2419 Str = to_string(e->e_phoff) + " (bytes into file)"; 2420 printFields(OS, "Start of program headers:", Str); 2421 Str = to_string(e->e_shoff) + " (bytes into file)"; 2422 printFields(OS, "Start of section headers:", Str); 2423 Str = "0x" + to_hexString(e->e_flags); 2424 printFields(OS, "Flags:", Str); 2425 Str = to_string(e->e_ehsize) + " (bytes)"; 2426 printFields(OS, "Size of this header:", Str); 2427 Str = to_string(e->e_phentsize) + " (bytes)"; 2428 printFields(OS, "Size of program headers:", Str); 2429 Str = to_string(e->e_phnum); 2430 printFields(OS, "Number of program headers:", Str); 2431 Str = to_string(e->e_shentsize) + " (bytes)"; 2432 printFields(OS, "Size of section headers:", Str); 2433 Str = to_string(e->e_shnum); 2434 printFields(OS, "Number of section headers:", Str); 2435 Str = to_string(e->e_shstrndx); 2436 printFields(OS, "Section header string table index:", Str); 2437 } 2438 2439 namespace { 2440 struct GroupMember { 2441 StringRef Name; 2442 uint64_t Index; 2443 }; 2444 2445 struct GroupSection { 2446 StringRef Name; 2447 StringRef Signature; 2448 uint64_t ShName; 2449 uint64_t Index; 2450 uint32_t Type; 2451 std::vector<GroupMember> Members; 2452 }; 2453 2454 template <class ELFT> 2455 std::vector<GroupSection> getGroups(const ELFFile<ELFT> *Obj) { 2456 using Elf_Shdr = typename ELFFile<ELFT>::Elf_Shdr; 2457 using Elf_Sym = typename ELFFile<ELFT>::Elf_Sym; 2458 using Elf_Word = typename ELFFile<ELFT>::Elf_Word; 2459 2460 std::vector<GroupSection> Ret; 2461 uint64_t I = 0; 2462 for (const Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 2463 ++I; 2464 if (Sec.sh_type != ELF::SHT_GROUP) 2465 continue; 2466 2467 const Elf_Shdr *Symtab = unwrapOrError(Obj->getSection(Sec.sh_link)); 2468 StringRef StrTable = unwrapOrError(Obj->getStringTableForSymtab(*Symtab)); 2469 const Elf_Sym *Sym = 2470 unwrapOrError(Obj->template getEntry<Elf_Sym>(Symtab, Sec.sh_info)); 2471 auto Data = 2472 unwrapOrError(Obj->template getSectionContentsAsArray<Elf_Word>(&Sec)); 2473 2474 StringRef Name = unwrapOrError(Obj->getSectionName(&Sec)); 2475 StringRef Signature = StrTable.data() + Sym->st_name; 2476 Ret.push_back({Name, Signature, Sec.sh_name, I - 1, Data[0], {}}); 2477 2478 std::vector<GroupMember> &GM = Ret.back().Members; 2479 for (uint32_t Ndx : Data.slice(1)) { 2480 auto Sec = unwrapOrError(Obj->getSection(Ndx)); 2481 const StringRef Name = unwrapOrError(Obj->getSectionName(Sec)); 2482 GM.push_back({Name, Ndx}); 2483 } 2484 } 2485 return Ret; 2486 } 2487 2488 DenseMap<uint64_t, const GroupSection *> 2489 mapSectionsToGroups(ArrayRef<GroupSection> Groups) { 2490 DenseMap<uint64_t, const GroupSection *> Ret; 2491 for (const GroupSection &G : Groups) 2492 for (const GroupMember &GM : G.Members) 2493 Ret.insert({GM.Index, &G}); 2494 return Ret; 2495 } 2496 2497 } // namespace 2498 2499 template <class ELFT> void GNUStyle<ELFT>::printGroupSections(const ELFO *Obj) { 2500 std::vector<GroupSection> V = getGroups<ELFT>(Obj); 2501 DenseMap<uint64_t, const GroupSection *> Map = mapSectionsToGroups(V); 2502 for (const GroupSection &G : V) { 2503 OS << "\n" 2504 << getGroupType(G.Type) << " group section [" 2505 << format_decimal(G.Index, 5) << "] `" << G.Name << "' [" << G.Signature 2506 << "] contains " << G.Members.size() << " sections:\n" 2507 << " [Index] Name\n"; 2508 for (const GroupMember &GM : G.Members) { 2509 const GroupSection *MainGroup = Map[GM.Index]; 2510 if (MainGroup != &G) { 2511 OS.flush(); 2512 errs() << "Error: section [" << format_decimal(GM.Index, 5) 2513 << "] in group section [" << format_decimal(G.Index, 5) 2514 << "] already in group section [" 2515 << format_decimal(MainGroup->Index, 5) << "]"; 2516 errs().flush(); 2517 continue; 2518 } 2519 OS << " [" << format_decimal(GM.Index, 5) << "] " << GM.Name << "\n"; 2520 } 2521 } 2522 2523 if (V.empty()) 2524 OS << "There are no section groups in this file.\n"; 2525 } 2526 2527 template <class ELFT> 2528 void GNUStyle<ELFT>::printRelocation(const ELFO *Obj, const Elf_Shdr *SymTab, 2529 const Elf_Rela &R, bool IsRela) { 2530 std::string Offset, Info, Addend, Value; 2531 SmallString<32> RelocName; 2532 StringRef StrTable = unwrapOrError(Obj->getStringTableForSymtab(*SymTab)); 2533 StringRef TargetName; 2534 const Elf_Sym *Sym = nullptr; 2535 unsigned Width = ELFT::Is64Bits ? 16 : 8; 2536 unsigned Bias = ELFT::Is64Bits ? 8 : 0; 2537 2538 // First two fields are bit width dependent. The rest of them are after are 2539 // fixed width. 2540 Field Fields[5] = {0, 10 + Bias, 19 + 2 * Bias, 42 + 2 * Bias, 53 + 2 * Bias}; 2541 Obj->getRelocationTypeName(R.getType(Obj->isMips64EL()), RelocName); 2542 Sym = unwrapOrError(Obj->getRelocationSymbol(&R, SymTab)); 2543 if (Sym && Sym->getType() == ELF::STT_SECTION) { 2544 const Elf_Shdr *Sec = unwrapOrError( 2545 Obj->getSection(Sym, SymTab, this->dumper()->getShndxTable())); 2546 TargetName = unwrapOrError(Obj->getSectionName(Sec)); 2547 } else if (Sym) { 2548 TargetName = unwrapOrError(Sym->getName(StrTable)); 2549 } 2550 2551 if (Sym && IsRela) { 2552 if (R.r_addend < 0) 2553 Addend = " - "; 2554 else 2555 Addend = " + "; 2556 } 2557 2558 Offset = to_string(format_hex_no_prefix(R.r_offset, Width)); 2559 Info = to_string(format_hex_no_prefix(R.r_info, Width)); 2560 2561 int64_t RelAddend = R.r_addend; 2562 if (IsRela) 2563 Addend += to_hexString(std::abs(RelAddend), false); 2564 2565 if (Sym) 2566 Value = to_string(format_hex_no_prefix(Sym->getValue(), Width)); 2567 2568 Fields[0].Str = Offset; 2569 Fields[1].Str = Info; 2570 Fields[2].Str = RelocName; 2571 Fields[3].Str = Value; 2572 Fields[4].Str = TargetName; 2573 for (auto &field : Fields) 2574 printField(field); 2575 OS << Addend; 2576 OS << "\n"; 2577 } 2578 2579 static inline void printRelocHeader(raw_ostream &OS, bool Is64, bool IsRela) { 2580 if (Is64) 2581 OS << " Offset Info Type" 2582 << " Symbol's Value Symbol's Name"; 2583 else 2584 OS << " Offset Info Type Sym. Value " 2585 << "Symbol's Name"; 2586 if (IsRela) 2587 OS << (IsRela ? " + Addend" : ""); 2588 OS << "\n"; 2589 } 2590 2591 template <class ELFT> void GNUStyle<ELFT>::printRelocations(const ELFO *Obj) { 2592 bool HasRelocSections = false; 2593 for (const Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 2594 if (Sec.sh_type != ELF::SHT_REL && Sec.sh_type != ELF::SHT_RELA) 2595 continue; 2596 HasRelocSections = true; 2597 StringRef Name = unwrapOrError(Obj->getSectionName(&Sec)); 2598 unsigned Entries = Sec.getEntityCount(); 2599 uintX_t Offset = Sec.sh_offset; 2600 OS << "\nRelocation section '" << Name << "' at offset 0x" 2601 << to_hexString(Offset, false) << " contains " << Entries 2602 << " entries:\n"; 2603 printRelocHeader(OS, ELFT::Is64Bits, (Sec.sh_type == ELF::SHT_RELA)); 2604 const Elf_Shdr *SymTab = unwrapOrError(Obj->getSection(Sec.sh_link)); 2605 if (Sec.sh_type == ELF::SHT_REL) { 2606 for (const auto &R : unwrapOrError(Obj->rels(&Sec))) { 2607 Elf_Rela Rela; 2608 Rela.r_offset = R.r_offset; 2609 Rela.r_info = R.r_info; 2610 Rela.r_addend = 0; 2611 printRelocation(Obj, SymTab, Rela, false); 2612 } 2613 } else { 2614 for (const auto &R : unwrapOrError(Obj->relas(&Sec))) 2615 printRelocation(Obj, SymTab, R, true); 2616 } 2617 } 2618 if (!HasRelocSections) 2619 OS << "\nThere are no relocations in this file.\n"; 2620 } 2621 2622 std::string getSectionTypeString(unsigned Arch, unsigned Type) { 2623 using namespace ELF; 2624 2625 switch (Arch) { 2626 case EM_ARM: 2627 switch (Type) { 2628 case SHT_ARM_EXIDX: 2629 return "ARM_EXIDX"; 2630 case SHT_ARM_PREEMPTMAP: 2631 return "ARM_PREEMPTMAP"; 2632 case SHT_ARM_ATTRIBUTES: 2633 return "ARM_ATTRIBUTES"; 2634 case SHT_ARM_DEBUGOVERLAY: 2635 return "ARM_DEBUGOVERLAY"; 2636 case SHT_ARM_OVERLAYSECTION: 2637 return "ARM_OVERLAYSECTION"; 2638 } 2639 case EM_X86_64: 2640 switch (Type) { 2641 case SHT_X86_64_UNWIND: 2642 return "X86_64_UNWIND"; 2643 } 2644 case EM_MIPS: 2645 case EM_MIPS_RS3_LE: 2646 switch (Type) { 2647 case SHT_MIPS_REGINFO: 2648 return "MIPS_REGINFO"; 2649 case SHT_MIPS_OPTIONS: 2650 return "MIPS_OPTIONS"; 2651 case SHT_MIPS_ABIFLAGS: 2652 return "MIPS_ABIFLAGS"; 2653 case SHT_MIPS_DWARF: 2654 return "SHT_MIPS_DWARF"; 2655 } 2656 } 2657 switch (Type) { 2658 case SHT_NULL: 2659 return "NULL"; 2660 case SHT_PROGBITS: 2661 return "PROGBITS"; 2662 case SHT_SYMTAB: 2663 return "SYMTAB"; 2664 case SHT_STRTAB: 2665 return "STRTAB"; 2666 case SHT_RELA: 2667 return "RELA"; 2668 case SHT_HASH: 2669 return "HASH"; 2670 case SHT_DYNAMIC: 2671 return "DYNAMIC"; 2672 case SHT_NOTE: 2673 return "NOTE"; 2674 case SHT_NOBITS: 2675 return "NOBITS"; 2676 case SHT_REL: 2677 return "REL"; 2678 case SHT_SHLIB: 2679 return "SHLIB"; 2680 case SHT_DYNSYM: 2681 return "DYNSYM"; 2682 case SHT_INIT_ARRAY: 2683 return "INIT_ARRAY"; 2684 case SHT_FINI_ARRAY: 2685 return "FINI_ARRAY"; 2686 case SHT_PREINIT_ARRAY: 2687 return "PREINIT_ARRAY"; 2688 case SHT_GROUP: 2689 return "GROUP"; 2690 case SHT_SYMTAB_SHNDX: 2691 return "SYMTAB SECTION INDICES"; 2692 case SHT_LLVM_ODRTAB: 2693 return "LLVM_ODRTAB"; 2694 // FIXME: Parse processor specific GNU attributes 2695 case SHT_GNU_ATTRIBUTES: 2696 return "ATTRIBUTES"; 2697 case SHT_GNU_HASH: 2698 return "GNU_HASH"; 2699 case SHT_GNU_verdef: 2700 return "VERDEF"; 2701 case SHT_GNU_verneed: 2702 return "VERNEED"; 2703 case SHT_GNU_versym: 2704 return "VERSYM"; 2705 default: 2706 return ""; 2707 } 2708 return ""; 2709 } 2710 2711 template <class ELFT> void GNUStyle<ELFT>::printSections(const ELFO *Obj) { 2712 size_t SectionIndex = 0; 2713 std::string Number, Type, Size, Address, Offset, Flags, Link, Info, EntrySize, 2714 Alignment; 2715 unsigned Bias; 2716 unsigned Width; 2717 2718 if (ELFT::Is64Bits) { 2719 Bias = 0; 2720 Width = 16; 2721 } else { 2722 Bias = 8; 2723 Width = 8; 2724 } 2725 OS << "There are " << to_string(Obj->getHeader()->e_shnum) 2726 << " section headers, starting at offset " 2727 << "0x" << to_hexString(Obj->getHeader()->e_shoff, false) << ":\n\n"; 2728 OS << "Section Headers:\n"; 2729 Field Fields[11] = {{"[Nr]", 2}, 2730 {"Name", 7}, 2731 {"Type", 25}, 2732 {"Address", 41}, 2733 {"Off", 58 - Bias}, 2734 {"Size", 65 - Bias}, 2735 {"ES", 72 - Bias}, 2736 {"Flg", 75 - Bias}, 2737 {"Lk", 79 - Bias}, 2738 {"Inf", 82 - Bias}, 2739 {"Al", 86 - Bias}}; 2740 for (auto &f : Fields) 2741 printField(f); 2742 OS << "\n"; 2743 2744 for (const Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 2745 Number = to_string(SectionIndex); 2746 Fields[0].Str = Number; 2747 Fields[1].Str = unwrapOrError(Obj->getSectionName(&Sec)); 2748 Type = getSectionTypeString(Obj->getHeader()->e_machine, Sec.sh_type); 2749 Fields[2].Str = Type; 2750 Address = to_string(format_hex_no_prefix(Sec.sh_addr, Width)); 2751 Fields[3].Str = Address; 2752 Offset = to_string(format_hex_no_prefix(Sec.sh_offset, 6)); 2753 Fields[4].Str = Offset; 2754 Size = to_string(format_hex_no_prefix(Sec.sh_size, 6)); 2755 Fields[5].Str = Size; 2756 EntrySize = to_string(format_hex_no_prefix(Sec.sh_entsize, 2)); 2757 Fields[6].Str = EntrySize; 2758 Flags = getGNUFlags(Sec.sh_flags); 2759 Fields[7].Str = Flags; 2760 Link = to_string(Sec.sh_link); 2761 Fields[8].Str = Link; 2762 Info = to_string(Sec.sh_info); 2763 Fields[9].Str = Info; 2764 Alignment = to_string(Sec.sh_addralign); 2765 Fields[10].Str = Alignment; 2766 OS.PadToColumn(Fields[0].Column); 2767 OS << "[" << right_justify(Fields[0].Str, 2) << "]"; 2768 for (int i = 1; i < 7; i++) 2769 printField(Fields[i]); 2770 OS.PadToColumn(Fields[7].Column); 2771 OS << right_justify(Fields[7].Str, 3); 2772 OS.PadToColumn(Fields[8].Column); 2773 OS << right_justify(Fields[8].Str, 2); 2774 OS.PadToColumn(Fields[9].Column); 2775 OS << right_justify(Fields[9].Str, 3); 2776 OS.PadToColumn(Fields[10].Column); 2777 OS << right_justify(Fields[10].Str, 2); 2778 OS << "\n"; 2779 ++SectionIndex; 2780 } 2781 OS << "Key to Flags:\n" 2782 << " W (write), A (alloc), X (execute), M (merge), S (strings), l " 2783 "(large)\n" 2784 << " I (info), L (link order), G (group), T (TLS), E (exclude),\ 2785 x (unknown)\n" 2786 << " O (extra OS processing required) o (OS specific),\ 2787 p (processor specific)\n"; 2788 } 2789 2790 template <class ELFT> 2791 void GNUStyle<ELFT>::printSymtabMessage(const ELFO *Obj, StringRef Name, 2792 size_t Entries) { 2793 if (!Name.empty()) 2794 OS << "\nSymbol table '" << Name << "' contains " << Entries 2795 << " entries:\n"; 2796 else 2797 OS << "\n Symbol table for image:\n"; 2798 2799 if (ELFT::Is64Bits) 2800 OS << " Num: Value Size Type Bind Vis Ndx Name\n"; 2801 else 2802 OS << " Num: Value Size Type Bind Vis Ndx Name\n"; 2803 } 2804 2805 template <class ELFT> 2806 std::string GNUStyle<ELFT>::getSymbolSectionNdx(const ELFO *Obj, 2807 const Elf_Sym *Symbol, 2808 const Elf_Sym *FirstSym) { 2809 unsigned SectionIndex = Symbol->st_shndx; 2810 switch (SectionIndex) { 2811 case ELF::SHN_UNDEF: 2812 return "UND"; 2813 case ELF::SHN_ABS: 2814 return "ABS"; 2815 case ELF::SHN_COMMON: 2816 return "COM"; 2817 case ELF::SHN_XINDEX: 2818 SectionIndex = unwrapOrError(object::getExtendedSymbolTableIndex<ELFT>( 2819 Symbol, FirstSym, this->dumper()->getShndxTable())); 2820 LLVM_FALLTHROUGH; 2821 default: 2822 // Find if: 2823 // Processor specific 2824 if (SectionIndex >= ELF::SHN_LOPROC && SectionIndex <= ELF::SHN_HIPROC) 2825 return std::string("PRC[0x") + 2826 to_string(format_hex_no_prefix(SectionIndex, 4)) + "]"; 2827 // OS specific 2828 if (SectionIndex >= ELF::SHN_LOOS && SectionIndex <= ELF::SHN_HIOS) 2829 return std::string("OS[0x") + 2830 to_string(format_hex_no_prefix(SectionIndex, 4)) + "]"; 2831 // Architecture reserved: 2832 if (SectionIndex >= ELF::SHN_LORESERVE && 2833 SectionIndex <= ELF::SHN_HIRESERVE) 2834 return std::string("RSV[0x") + 2835 to_string(format_hex_no_prefix(SectionIndex, 4)) + "]"; 2836 // A normal section with an index 2837 return to_string(format_decimal(SectionIndex, 3)); 2838 } 2839 } 2840 2841 template <class ELFT> 2842 void GNUStyle<ELFT>::printSymbol(const ELFO *Obj, const Elf_Sym *Symbol, 2843 const Elf_Sym *FirstSym, StringRef StrTable, 2844 bool IsDynamic) { 2845 static int Idx = 0; 2846 static bool Dynamic = true; 2847 size_t Width; 2848 2849 // If this function was called with a different value from IsDynamic 2850 // from last call, happens when we move from dynamic to static symbol 2851 // table, "Num" field should be reset. 2852 if (!Dynamic != !IsDynamic) { 2853 Idx = 0; 2854 Dynamic = false; 2855 } 2856 std::string Num, Name, Value, Size, Binding, Type, Visibility, Section; 2857 unsigned Bias = 0; 2858 if (ELFT::Is64Bits) { 2859 Bias = 8; 2860 Width = 16; 2861 } else { 2862 Bias = 0; 2863 Width = 8; 2864 } 2865 Field Fields[8] = {0, 8, 17 + Bias, 23 + Bias, 2866 31 + Bias, 38 + Bias, 47 + Bias, 51 + Bias}; 2867 Num = to_string(format_decimal(Idx++, 6)) + ":"; 2868 Value = to_string(format_hex_no_prefix(Symbol->st_value, Width)); 2869 Size = to_string(format_decimal(Symbol->st_size, 5)); 2870 unsigned char SymbolType = Symbol->getType(); 2871 if (Obj->getHeader()->e_machine == ELF::EM_AMDGPU && 2872 SymbolType >= ELF::STT_LOOS && SymbolType < ELF::STT_HIOS) 2873 Type = printEnum(SymbolType, makeArrayRef(AMDGPUSymbolTypes)); 2874 else 2875 Type = printEnum(SymbolType, makeArrayRef(ElfSymbolTypes)); 2876 unsigned Vis = Symbol->getVisibility(); 2877 Binding = printEnum(Symbol->getBinding(), makeArrayRef(ElfSymbolBindings)); 2878 Visibility = printEnum(Vis, makeArrayRef(ElfSymbolVisibilities)); 2879 Section = getSymbolSectionNdx(Obj, Symbol, FirstSym); 2880 Name = this->dumper()->getFullSymbolName(Symbol, StrTable, IsDynamic); 2881 Fields[0].Str = Num; 2882 Fields[1].Str = Value; 2883 Fields[2].Str = Size; 2884 Fields[3].Str = Type; 2885 Fields[4].Str = Binding; 2886 Fields[5].Str = Visibility; 2887 Fields[6].Str = Section; 2888 Fields[7].Str = Name; 2889 for (auto &Entry : Fields) 2890 printField(Entry); 2891 OS << "\n"; 2892 } 2893 template <class ELFT> 2894 void GNUStyle<ELFT>::printHashedSymbol(const ELFO *Obj, const Elf_Sym *FirstSym, 2895 uint32_t Sym, StringRef StrTable, 2896 uint32_t Bucket) { 2897 std::string Num, Buc, Name, Value, Size, Binding, Type, Visibility, Section; 2898 unsigned Width, Bias = 0; 2899 if (ELFT::Is64Bits) { 2900 Bias = 8; 2901 Width = 16; 2902 } else { 2903 Bias = 0; 2904 Width = 8; 2905 } 2906 Field Fields[9] = {0, 6, 11, 20 + Bias, 25 + Bias, 2907 34 + Bias, 41 + Bias, 49 + Bias, 53 + Bias}; 2908 Num = to_string(format_decimal(Sym, 5)); 2909 Buc = to_string(format_decimal(Bucket, 3)) + ":"; 2910 2911 const auto Symbol = FirstSym + Sym; 2912 Value = to_string(format_hex_no_prefix(Symbol->st_value, Width)); 2913 Size = to_string(format_decimal(Symbol->st_size, 5)); 2914 unsigned char SymbolType = Symbol->getType(); 2915 if (Obj->getHeader()->e_machine == ELF::EM_AMDGPU && 2916 SymbolType >= ELF::STT_LOOS && SymbolType < ELF::STT_HIOS) 2917 Type = printEnum(SymbolType, makeArrayRef(AMDGPUSymbolTypes)); 2918 else 2919 Type = printEnum(SymbolType, makeArrayRef(ElfSymbolTypes)); 2920 unsigned Vis = Symbol->getVisibility(); 2921 Binding = printEnum(Symbol->getBinding(), makeArrayRef(ElfSymbolBindings)); 2922 Visibility = printEnum(Vis, makeArrayRef(ElfSymbolVisibilities)); 2923 Section = getSymbolSectionNdx(Obj, Symbol, FirstSym); 2924 Name = this->dumper()->getFullSymbolName(Symbol, StrTable, true); 2925 Fields[0].Str = Num; 2926 Fields[1].Str = Buc; 2927 Fields[2].Str = Value; 2928 Fields[3].Str = Size; 2929 Fields[4].Str = Type; 2930 Fields[5].Str = Binding; 2931 Fields[6].Str = Visibility; 2932 Fields[7].Str = Section; 2933 Fields[8].Str = Name; 2934 for (auto &Entry : Fields) 2935 printField(Entry); 2936 OS << "\n"; 2937 } 2938 2939 template <class ELFT> void GNUStyle<ELFT>::printSymbols(const ELFO *Obj) { 2940 if (opts::DynamicSymbols) 2941 return; 2942 this->dumper()->printSymbolsHelper(true); 2943 this->dumper()->printSymbolsHelper(false); 2944 } 2945 2946 template <class ELFT> 2947 void GNUStyle<ELFT>::printDynamicSymbols(const ELFO *Obj) { 2948 if (this->dumper()->getDynamicStringTable().empty()) 2949 return; 2950 auto StringTable = this->dumper()->getDynamicStringTable(); 2951 auto DynSyms = this->dumper()->dynamic_symbols(); 2952 auto GnuHash = this->dumper()->getGnuHashTable(); 2953 auto SysVHash = this->dumper()->getHashTable(); 2954 2955 // If no hash or .gnu.hash found, try using symbol table 2956 if (GnuHash == nullptr && SysVHash == nullptr) 2957 this->dumper()->printSymbolsHelper(true); 2958 2959 // Try printing .hash 2960 if (this->dumper()->getHashTable()) { 2961 OS << "\n Symbol table of .hash for image:\n"; 2962 if (ELFT::Is64Bits) 2963 OS << " Num Buc: Value Size Type Bind Vis Ndx Name"; 2964 else 2965 OS << " Num Buc: Value Size Type Bind Vis Ndx Name"; 2966 OS << "\n"; 2967 2968 uint32_t NBuckets = SysVHash->nbucket; 2969 uint32_t NChains = SysVHash->nchain; 2970 auto Buckets = SysVHash->buckets(); 2971 auto Chains = SysVHash->chains(); 2972 for (uint32_t Buc = 0; Buc < NBuckets; Buc++) { 2973 if (Buckets[Buc] == ELF::STN_UNDEF) 2974 continue; 2975 for (uint32_t Ch = Buckets[Buc]; Ch < NChains; Ch = Chains[Ch]) { 2976 if (Ch == ELF::STN_UNDEF) 2977 break; 2978 printHashedSymbol(Obj, &DynSyms[0], Ch, StringTable, Buc); 2979 } 2980 } 2981 } 2982 2983 // Try printing .gnu.hash 2984 if (GnuHash) { 2985 OS << "\n Symbol table of .gnu.hash for image:\n"; 2986 if (ELFT::Is64Bits) 2987 OS << " Num Buc: Value Size Type Bind Vis Ndx Name"; 2988 else 2989 OS << " Num Buc: Value Size Type Bind Vis Ndx Name"; 2990 OS << "\n"; 2991 uint32_t NBuckets = GnuHash->nbuckets; 2992 auto Buckets = GnuHash->buckets(); 2993 for (uint32_t Buc = 0; Buc < NBuckets; Buc++) { 2994 if (Buckets[Buc] == ELF::STN_UNDEF) 2995 continue; 2996 uint32_t Index = Buckets[Buc]; 2997 uint32_t GnuHashable = Index - GnuHash->symndx; 2998 // Print whole chain 2999 while (true) { 3000 printHashedSymbol(Obj, &DynSyms[0], Index++, StringTable, Buc); 3001 // Chain ends at symbol with stopper bit 3002 if ((GnuHash->values(DynSyms.size())[GnuHashable++] & 1) == 1) 3003 break; 3004 } 3005 } 3006 } 3007 } 3008 3009 static inline std::string printPhdrFlags(unsigned Flag) { 3010 std::string Str; 3011 Str = (Flag & PF_R) ? "R" : " "; 3012 Str += (Flag & PF_W) ? "W" : " "; 3013 Str += (Flag & PF_X) ? "E" : " "; 3014 return Str; 3015 } 3016 3017 // SHF_TLS sections are only in PT_TLS, PT_LOAD or PT_GNU_RELRO 3018 // PT_TLS must only have SHF_TLS sections 3019 template <class ELFT> 3020 bool GNUStyle<ELFT>::checkTLSSections(const Elf_Phdr &Phdr, 3021 const Elf_Shdr &Sec) { 3022 return (((Sec.sh_flags & ELF::SHF_TLS) && 3023 ((Phdr.p_type == ELF::PT_TLS) || (Phdr.p_type == ELF::PT_LOAD) || 3024 (Phdr.p_type == ELF::PT_GNU_RELRO))) || 3025 (!(Sec.sh_flags & ELF::SHF_TLS) && Phdr.p_type != ELF::PT_TLS)); 3026 } 3027 3028 // Non-SHT_NOBITS must have its offset inside the segment 3029 // Only non-zero section can be at end of segment 3030 template <class ELFT> 3031 bool GNUStyle<ELFT>::checkoffsets(const Elf_Phdr &Phdr, const Elf_Shdr &Sec) { 3032 if (Sec.sh_type == ELF::SHT_NOBITS) 3033 return true; 3034 bool IsSpecial = 3035 (Sec.sh_type == ELF::SHT_NOBITS) && ((Sec.sh_flags & ELF::SHF_TLS) != 0); 3036 // .tbss is special, it only has memory in PT_TLS and has NOBITS properties 3037 auto SectionSize = 3038 (IsSpecial && Phdr.p_type != ELF::PT_TLS) ? 0 : Sec.sh_size; 3039 if (Sec.sh_offset >= Phdr.p_offset) 3040 return ((Sec.sh_offset + SectionSize <= Phdr.p_filesz + Phdr.p_offset) 3041 /*only non-zero sized sections at end*/ && 3042 (Sec.sh_offset + 1 <= Phdr.p_offset + Phdr.p_filesz)); 3043 return false; 3044 } 3045 3046 // SHF_ALLOC must have VMA inside segment 3047 // Only non-zero section can be at end of segment 3048 template <class ELFT> 3049 bool GNUStyle<ELFT>::checkVMA(const Elf_Phdr &Phdr, const Elf_Shdr &Sec) { 3050 if (!(Sec.sh_flags & ELF::SHF_ALLOC)) 3051 return true; 3052 bool IsSpecial = 3053 (Sec.sh_type == ELF::SHT_NOBITS) && ((Sec.sh_flags & ELF::SHF_TLS) != 0); 3054 // .tbss is special, it only has memory in PT_TLS and has NOBITS properties 3055 auto SectionSize = 3056 (IsSpecial && Phdr.p_type != ELF::PT_TLS) ? 0 : Sec.sh_size; 3057 if (Sec.sh_addr >= Phdr.p_vaddr) 3058 return ((Sec.sh_addr + SectionSize <= Phdr.p_vaddr + Phdr.p_memsz) && 3059 (Sec.sh_addr + 1 <= Phdr.p_vaddr + Phdr.p_memsz)); 3060 return false; 3061 } 3062 3063 // No section with zero size must be at start or end of PT_DYNAMIC 3064 template <class ELFT> 3065 bool GNUStyle<ELFT>::checkPTDynamic(const Elf_Phdr &Phdr, const Elf_Shdr &Sec) { 3066 if (Phdr.p_type != ELF::PT_DYNAMIC || Sec.sh_size != 0 || Phdr.p_memsz == 0) 3067 return true; 3068 // Is section within the phdr both based on offset and VMA ? 3069 return ((Sec.sh_type == ELF::SHT_NOBITS) || 3070 (Sec.sh_offset > Phdr.p_offset && 3071 Sec.sh_offset < Phdr.p_offset + Phdr.p_filesz)) && 3072 (!(Sec.sh_flags & ELF::SHF_ALLOC) || 3073 (Sec.sh_addr > Phdr.p_vaddr && Sec.sh_addr < Phdr.p_memsz)); 3074 } 3075 3076 template <class ELFT> 3077 void GNUStyle<ELFT>::printProgramHeaders(const ELFO *Obj) { 3078 unsigned Bias = ELFT::Is64Bits ? 8 : 0; 3079 unsigned Width = ELFT::Is64Bits ? 18 : 10; 3080 unsigned SizeWidth = ELFT::Is64Bits ? 8 : 7; 3081 std::string Type, Offset, VMA, LMA, FileSz, MemSz, Flag, Align; 3082 3083 const Elf_Ehdr *Header = Obj->getHeader(); 3084 Field Fields[8] = {2, 17, 26, 37 + Bias, 3085 48 + Bias, 56 + Bias, 64 + Bias, 68 + Bias}; 3086 OS << "\nElf file type is " 3087 << printEnum(Header->e_type, makeArrayRef(ElfObjectFileType)) << "\n" 3088 << "Entry point " << format_hex(Header->e_entry, 3) << "\n" 3089 << "There are " << Header->e_phnum << " program headers," 3090 << " starting at offset " << Header->e_phoff << "\n\n" 3091 << "Program Headers:\n"; 3092 if (ELFT::Is64Bits) 3093 OS << " Type Offset VirtAddr PhysAddr " 3094 << " FileSiz MemSiz Flg Align\n"; 3095 else 3096 OS << " Type Offset VirtAddr PhysAddr FileSiz " 3097 << "MemSiz Flg Align\n"; 3098 for (const auto &Phdr : unwrapOrError(Obj->program_headers())) { 3099 Type = getElfPtType(Header->e_machine, Phdr.p_type); 3100 Offset = to_string(format_hex(Phdr.p_offset, 8)); 3101 VMA = to_string(format_hex(Phdr.p_vaddr, Width)); 3102 LMA = to_string(format_hex(Phdr.p_paddr, Width)); 3103 FileSz = to_string(format_hex(Phdr.p_filesz, SizeWidth)); 3104 MemSz = to_string(format_hex(Phdr.p_memsz, SizeWidth)); 3105 Flag = printPhdrFlags(Phdr.p_flags); 3106 Align = to_string(format_hex(Phdr.p_align, 1)); 3107 Fields[0].Str = Type; 3108 Fields[1].Str = Offset; 3109 Fields[2].Str = VMA; 3110 Fields[3].Str = LMA; 3111 Fields[4].Str = FileSz; 3112 Fields[5].Str = MemSz; 3113 Fields[6].Str = Flag; 3114 Fields[7].Str = Align; 3115 for (auto Field : Fields) 3116 printField(Field); 3117 if (Phdr.p_type == ELF::PT_INTERP) { 3118 OS << "\n [Requesting program interpreter: "; 3119 OS << reinterpret_cast<const char *>(Obj->base()) + Phdr.p_offset << "]"; 3120 } 3121 OS << "\n"; 3122 } 3123 OS << "\n Section to Segment mapping:\n Segment Sections...\n"; 3124 int Phnum = 0; 3125 for (const Elf_Phdr &Phdr : unwrapOrError(Obj->program_headers())) { 3126 std::string Sections; 3127 OS << format(" %2.2d ", Phnum++); 3128 for (const Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 3129 // Check if each section is in a segment and then print mapping. 3130 // readelf additionally makes sure it does not print zero sized sections 3131 // at end of segments and for PT_DYNAMIC both start and end of section 3132 // .tbss must only be shown in PT_TLS section. 3133 bool TbssInNonTLS = (Sec.sh_type == ELF::SHT_NOBITS) && 3134 ((Sec.sh_flags & ELF::SHF_TLS) != 0) && 3135 Phdr.p_type != ELF::PT_TLS; 3136 if (!TbssInNonTLS && checkTLSSections(Phdr, Sec) && 3137 checkoffsets(Phdr, Sec) && checkVMA(Phdr, Sec) && 3138 checkPTDynamic(Phdr, Sec) && (Sec.sh_type != ELF::SHT_NULL)) 3139 Sections += unwrapOrError(Obj->getSectionName(&Sec)).str() + " "; 3140 } 3141 OS << Sections << "\n"; 3142 OS.flush(); 3143 } 3144 } 3145 3146 template <class ELFT> 3147 void GNUStyle<ELFT>::printDynamicRelocation(const ELFO *Obj, Elf_Rela R, 3148 bool IsRela) { 3149 SmallString<32> RelocName; 3150 StringRef SymbolName; 3151 unsigned Width = ELFT::Is64Bits ? 16 : 8; 3152 unsigned Bias = ELFT::Is64Bits ? 8 : 0; 3153 // First two fields are bit width dependent. The rest of them are after are 3154 // fixed width. 3155 Field Fields[5] = {0, 10 + Bias, 19 + 2 * Bias, 42 + 2 * Bias, 53 + 2 * Bias}; 3156 3157 uint32_t SymIndex = R.getSymbol(Obj->isMips64EL()); 3158 const Elf_Sym *Sym = this->dumper()->dynamic_symbols().begin() + SymIndex; 3159 Obj->getRelocationTypeName(R.getType(Obj->isMips64EL()), RelocName); 3160 SymbolName = 3161 unwrapOrError(Sym->getName(this->dumper()->getDynamicStringTable())); 3162 std::string Addend, Info, Offset, Value; 3163 Offset = to_string(format_hex_no_prefix(R.r_offset, Width)); 3164 Info = to_string(format_hex_no_prefix(R.r_info, Width)); 3165 Value = to_string(format_hex_no_prefix(Sym->getValue(), Width)); 3166 int64_t RelAddend = R.r_addend; 3167 if (!SymbolName.empty() && IsRela) { 3168 if (R.r_addend < 0) 3169 Addend = " - "; 3170 else 3171 Addend = " + "; 3172 } 3173 3174 if (SymbolName.empty() && Sym->getValue() == 0) 3175 Value = ""; 3176 3177 if (IsRela) 3178 Addend += to_string(format_hex_no_prefix(std::abs(RelAddend), 1)); 3179 3180 3181 Fields[0].Str = Offset; 3182 Fields[1].Str = Info; 3183 Fields[2].Str = RelocName.c_str(); 3184 Fields[3].Str = Value; 3185 Fields[4].Str = SymbolName; 3186 for (auto &Field : Fields) 3187 printField(Field); 3188 OS << Addend; 3189 OS << "\n"; 3190 } 3191 3192 template <class ELFT> 3193 void GNUStyle<ELFT>::printDynamicRelocations(const ELFO *Obj) { 3194 const DynRegionInfo &DynRelRegion = this->dumper()->getDynRelRegion(); 3195 const DynRegionInfo &DynRelaRegion = this->dumper()->getDynRelaRegion(); 3196 const DynRegionInfo &DynPLTRelRegion = this->dumper()->getDynPLTRelRegion(); 3197 if (DynRelaRegion.Size > 0) { 3198 OS << "\n'RELA' relocation section at offset " 3199 << format_hex(reinterpret_cast<const uint8_t *>(DynRelaRegion.Addr) - 3200 Obj->base(), 3201 1) << " contains " << DynRelaRegion.Size << " bytes:\n"; 3202 printRelocHeader(OS, ELFT::Is64Bits, true); 3203 for (const Elf_Rela &Rela : this->dumper()->dyn_relas()) 3204 printDynamicRelocation(Obj, Rela, true); 3205 } 3206 if (DynRelRegion.Size > 0) { 3207 OS << "\n'REL' relocation section at offset " 3208 << format_hex(reinterpret_cast<const uint8_t *>(DynRelRegion.Addr) - 3209 Obj->base(), 3210 1) << " contains " << DynRelRegion.Size << " bytes:\n"; 3211 printRelocHeader(OS, ELFT::Is64Bits, false); 3212 for (const Elf_Rel &Rel : this->dumper()->dyn_rels()) { 3213 Elf_Rela Rela; 3214 Rela.r_offset = Rel.r_offset; 3215 Rela.r_info = Rel.r_info; 3216 Rela.r_addend = 0; 3217 printDynamicRelocation(Obj, Rela, false); 3218 } 3219 } 3220 if (DynPLTRelRegion.Size) { 3221 OS << "\n'PLT' relocation section at offset " 3222 << format_hex(reinterpret_cast<const uint8_t *>(DynPLTRelRegion.Addr) - 3223 Obj->base(), 3224 1) << " contains " << DynPLTRelRegion.Size << " bytes:\n"; 3225 } 3226 if (DynPLTRelRegion.EntSize == sizeof(Elf_Rela)) { 3227 printRelocHeader(OS, ELFT::Is64Bits, true); 3228 for (const Elf_Rela &Rela : DynPLTRelRegion.getAsArrayRef<Elf_Rela>()) 3229 printDynamicRelocation(Obj, Rela, true); 3230 } else { 3231 printRelocHeader(OS, ELFT::Is64Bits, false); 3232 for (const Elf_Rel &Rel : DynPLTRelRegion.getAsArrayRef<Elf_Rel>()) { 3233 Elf_Rela Rela; 3234 Rela.r_offset = Rel.r_offset; 3235 Rela.r_info = Rel.r_info; 3236 Rela.r_addend = 0; 3237 printDynamicRelocation(Obj, Rela, false); 3238 } 3239 } 3240 } 3241 3242 // Hash histogram shows statistics of how efficient the hash was for the 3243 // dynamic symbol table. The table shows number of hash buckets for different 3244 // lengths of chains as absolute number and percentage of the total buckets. 3245 // Additionally cumulative coverage of symbols for each set of buckets. 3246 template <class ELFT> 3247 void GNUStyle<ELFT>::printHashHistogram(const ELFFile<ELFT> *Obj) { 3248 3249 const Elf_Hash *HashTable = this->dumper()->getHashTable(); 3250 const Elf_GnuHash *GnuHashTable = this->dumper()->getGnuHashTable(); 3251 3252 // Print histogram for .hash section 3253 if (HashTable) { 3254 size_t NBucket = HashTable->nbucket; 3255 size_t NChain = HashTable->nchain; 3256 ArrayRef<Elf_Word> Buckets = HashTable->buckets(); 3257 ArrayRef<Elf_Word> Chains = HashTable->chains(); 3258 size_t TotalSyms = 0; 3259 // If hash table is correct, we have at least chains with 0 length 3260 size_t MaxChain = 1; 3261 size_t CumulativeNonZero = 0; 3262 3263 if (NChain == 0 || NBucket == 0) 3264 return; 3265 3266 std::vector<size_t> ChainLen(NBucket, 0); 3267 // Go over all buckets and and note chain lengths of each bucket (total 3268 // unique chain lengths). 3269 for (size_t B = 0; B < NBucket; B++) { 3270 for (size_t C = Buckets[B]; C > 0 && C < NChain; C = Chains[C]) 3271 if (MaxChain <= ++ChainLen[B]) 3272 MaxChain++; 3273 TotalSyms += ChainLen[B]; 3274 } 3275 3276 if (!TotalSyms) 3277 return; 3278 3279 std::vector<size_t> Count(MaxChain, 0) ; 3280 // Count how long is the chain for each bucket 3281 for (size_t B = 0; B < NBucket; B++) 3282 ++Count[ChainLen[B]]; 3283 // Print Number of buckets with each chain lengths and their cumulative 3284 // coverage of the symbols 3285 OS << "Histogram for bucket list length (total of " << NBucket 3286 << " buckets)\n" 3287 << " Length Number % of total Coverage\n"; 3288 for (size_t I = 0; I < MaxChain; I++) { 3289 CumulativeNonZero += Count[I] * I; 3290 OS << format("%7lu %-10lu (%5.1f%%) %5.1f%%\n", I, Count[I], 3291 (Count[I] * 100.0) / NBucket, 3292 (CumulativeNonZero * 100.0) / TotalSyms); 3293 } 3294 } 3295 3296 // Print histogram for .gnu.hash section 3297 if (GnuHashTable) { 3298 size_t NBucket = GnuHashTable->nbuckets; 3299 ArrayRef<Elf_Word> Buckets = GnuHashTable->buckets(); 3300 unsigned NumSyms = this->dumper()->dynamic_symbols().size(); 3301 if (!NumSyms) 3302 return; 3303 ArrayRef<Elf_Word> Chains = GnuHashTable->values(NumSyms); 3304 size_t Symndx = GnuHashTable->symndx; 3305 size_t TotalSyms = 0; 3306 size_t MaxChain = 1; 3307 size_t CumulativeNonZero = 0; 3308 3309 if (Chains.empty() || NBucket == 0) 3310 return; 3311 3312 std::vector<size_t> ChainLen(NBucket, 0); 3313 3314 for (size_t B = 0; B < NBucket; B++) { 3315 if (!Buckets[B]) 3316 continue; 3317 size_t Len = 1; 3318 for (size_t C = Buckets[B] - Symndx; 3319 C < Chains.size() && (Chains[C] & 1) == 0; C++) 3320 if (MaxChain < ++Len) 3321 MaxChain++; 3322 ChainLen[B] = Len; 3323 TotalSyms += Len; 3324 } 3325 MaxChain++; 3326 3327 if (!TotalSyms) 3328 return; 3329 3330 std::vector<size_t> Count(MaxChain, 0) ; 3331 for (size_t B = 0; B < NBucket; B++) 3332 ++Count[ChainLen[B]]; 3333 // Print Number of buckets with each chain lengths and their cumulative 3334 // coverage of the symbols 3335 OS << "Histogram for `.gnu.hash' bucket list length (total of " << NBucket 3336 << " buckets)\n" 3337 << " Length Number % of total Coverage\n"; 3338 for (size_t I = 0; I <MaxChain; I++) { 3339 CumulativeNonZero += Count[I] * I; 3340 OS << format("%7lu %-10lu (%5.1f%%) %5.1f%%\n", I, Count[I], 3341 (Count[I] * 100.0) / NBucket, 3342 (CumulativeNonZero * 100.0) / TotalSyms); 3343 } 3344 } 3345 } 3346 3347 static std::string getGNUNoteTypeName(const uint32_t NT) { 3348 static const struct { 3349 uint32_t ID; 3350 const char *Name; 3351 } Notes[] = { 3352 {ELF::NT_GNU_ABI_TAG, "NT_GNU_ABI_TAG (ABI version tag)"}, 3353 {ELF::NT_GNU_HWCAP, "NT_GNU_HWCAP (DSO-supplied software HWCAP info)"}, 3354 {ELF::NT_GNU_BUILD_ID, "NT_GNU_BUILD_ID (unique build ID bitstring)"}, 3355 {ELF::NT_GNU_GOLD_VERSION, "NT_GNU_GOLD_VERSION (gold version)"}, 3356 }; 3357 3358 for (const auto &Note : Notes) 3359 if (Note.ID == NT) 3360 return std::string(Note.Name); 3361 3362 std::string string; 3363 raw_string_ostream OS(string); 3364 OS << format("Unknown note type (0x%08x)", NT); 3365 return OS.str(); 3366 } 3367 3368 static std::string getFreeBSDNoteTypeName(const uint32_t NT) { 3369 static const struct { 3370 uint32_t ID; 3371 const char *Name; 3372 } Notes[] = { 3373 {ELF::NT_FREEBSD_THRMISC, "NT_THRMISC (thrmisc structure)"}, 3374 {ELF::NT_FREEBSD_PROCSTAT_PROC, "NT_PROCSTAT_PROC (proc data)"}, 3375 {ELF::NT_FREEBSD_PROCSTAT_FILES, "NT_PROCSTAT_FILES (files data)"}, 3376 {ELF::NT_FREEBSD_PROCSTAT_VMMAP, "NT_PROCSTAT_VMMAP (vmmap data)"}, 3377 {ELF::NT_FREEBSD_PROCSTAT_GROUPS, "NT_PROCSTAT_GROUPS (groups data)"}, 3378 {ELF::NT_FREEBSD_PROCSTAT_UMASK, "NT_PROCSTAT_UMASK (umask data)"}, 3379 {ELF::NT_FREEBSD_PROCSTAT_RLIMIT, "NT_PROCSTAT_RLIMIT (rlimit data)"}, 3380 {ELF::NT_FREEBSD_PROCSTAT_OSREL, "NT_PROCSTAT_OSREL (osreldate data)"}, 3381 {ELF::NT_FREEBSD_PROCSTAT_PSSTRINGS, 3382 "NT_PROCSTAT_PSSTRINGS (ps_strings data)"}, 3383 {ELF::NT_FREEBSD_PROCSTAT_AUXV, "NT_PROCSTAT_AUXV (auxv data)"}, 3384 }; 3385 3386 for (const auto &Note : Notes) 3387 if (Note.ID == NT) 3388 return std::string(Note.Name); 3389 3390 std::string string; 3391 raw_string_ostream OS(string); 3392 OS << format("Unknown note type (0x%08x)", NT); 3393 return OS.str(); 3394 } 3395 3396 static std::string getAMDGPUNoteTypeName(const uint32_t NT) { 3397 static const struct { 3398 uint32_t ID; 3399 const char *Name; 3400 } Notes[] = { 3401 {ELF::NT_AMD_AMDGPU_HSA_METADATA, 3402 "NT_AMD_AMDGPU_HSA_METADATA (HSA Metadata)"}, 3403 {ELF::NT_AMD_AMDGPU_ISA, 3404 "NT_AMD_AMDGPU_ISA (ISA Version)"}, 3405 {ELF::NT_AMD_AMDGPU_PAL_METADATA, 3406 "NT_AMD_AMDGPU_PAL_METADATA (PAL Metadata)"} 3407 }; 3408 3409 for (const auto &Note : Notes) 3410 if (Note.ID == NT) 3411 return std::string(Note.Name); 3412 3413 std::string string; 3414 raw_string_ostream OS(string); 3415 OS << format("Unknown note type (0x%08x)", NT); 3416 return OS.str(); 3417 } 3418 3419 template <typename ELFT> 3420 static void printGNUNote(raw_ostream &OS, uint32_t NoteType, 3421 ArrayRef<typename ELFFile<ELFT>::Elf_Word> Words, 3422 size_t Size) { 3423 switch (NoteType) { 3424 default: 3425 return; 3426 case ELF::NT_GNU_ABI_TAG: { 3427 static const char *OSNames[] = { 3428 "Linux", "Hurd", "Solaris", "FreeBSD", "NetBSD", "Syllable", "NaCl", 3429 }; 3430 3431 StringRef OSName = "Unknown"; 3432 if (Words[0] < array_lengthof(OSNames)) 3433 OSName = OSNames[Words[0]]; 3434 uint32_t Major = Words[1], Minor = Words[2], Patch = Words[3]; 3435 3436 if (Words.size() < 4) 3437 OS << " <corrupt GNU_ABI_TAG>"; 3438 else 3439 OS << " OS: " << OSName << ", ABI: " << Major << "." << Minor << "." 3440 << Patch; 3441 break; 3442 } 3443 case ELF::NT_GNU_BUILD_ID: { 3444 OS << " Build ID: "; 3445 ArrayRef<uint8_t> ID(reinterpret_cast<const uint8_t *>(Words.data()), Size); 3446 for (const auto &B : ID) 3447 OS << format_hex_no_prefix(B, 2); 3448 break; 3449 } 3450 case ELF::NT_GNU_GOLD_VERSION: 3451 OS << " Version: " 3452 << StringRef(reinterpret_cast<const char *>(Words.data()), Size); 3453 break; 3454 } 3455 3456 OS << '\n'; 3457 } 3458 3459 template <typename ELFT> 3460 static void printAMDGPUNote(raw_ostream &OS, uint32_t NoteType, 3461 ArrayRef<typename ELFFile<ELFT>::Elf_Word> Words, 3462 size_t Size) { 3463 switch (NoteType) { 3464 default: 3465 return; 3466 case ELF::NT_AMD_AMDGPU_HSA_METADATA: 3467 OS << " HSA Metadata:\n" 3468 << StringRef(reinterpret_cast<const char *>(Words.data()), Size); 3469 break; 3470 case ELF::NT_AMD_AMDGPU_ISA: 3471 OS << " ISA Version:\n" 3472 << " " 3473 << StringRef(reinterpret_cast<const char *>(Words.data()), Size); 3474 break; 3475 case ELF::NT_AMD_AMDGPU_PAL_METADATA: 3476 const uint32_t *PALMetadataBegin = reinterpret_cast<const uint32_t *>(Words.data()); 3477 const uint32_t *PALMetadataEnd = PALMetadataBegin + Size; 3478 std::vector<uint32_t> PALMetadata(PALMetadataBegin, PALMetadataEnd); 3479 std::string PALMetadataString; 3480 auto Error = AMDGPU::PALMD::toString(PALMetadata, PALMetadataString); 3481 OS << " PAL Metadata:\n"; 3482 if (Error) { 3483 OS << " Invalid"; 3484 return; 3485 } 3486 OS << PALMetadataString; 3487 break; 3488 } 3489 OS.flush(); 3490 } 3491 3492 template <class ELFT> 3493 void GNUStyle<ELFT>::printNotes(const ELFFile<ELFT> *Obj) { 3494 const Elf_Ehdr *e = Obj->getHeader(); 3495 bool IsCore = e->e_type == ELF::ET_CORE; 3496 3497 auto process = [&](const typename ELFFile<ELFT>::Elf_Off Offset, 3498 const typename ELFFile<ELFT>::Elf_Addr Size) { 3499 if (Size <= 0) 3500 return; 3501 3502 const auto *P = static_cast<const uint8_t *>(Obj->base() + Offset); 3503 const auto *E = P + Size; 3504 3505 OS << "Displaying notes found at file offset " << format_hex(Offset, 10) 3506 << " with length " << format_hex(Size, 10) << ":\n" 3507 << " Owner Data size\tDescription\n"; 3508 3509 while (P < E) { 3510 const Elf_Word *Words = reinterpret_cast<const Elf_Word *>(&P[0]); 3511 3512 uint32_t NameSize = Words[0]; 3513 uint32_t DescriptorSize = Words[1]; 3514 uint32_t Type = Words[2]; 3515 3516 ArrayRef<Elf_Word> Descriptor(&Words[3 + (alignTo<4>(NameSize) / 4)], 3517 alignTo<4>(DescriptorSize) / 4); 3518 3519 StringRef Name; 3520 if (NameSize) 3521 Name = 3522 StringRef(reinterpret_cast<const char *>(&Words[3]), NameSize - 1); 3523 3524 OS << " " << Name << std::string(22 - NameSize, ' ') 3525 << format_hex(DescriptorSize, 10) << '\t'; 3526 3527 if (Name == "GNU") { 3528 OS << getGNUNoteTypeName(Type) << '\n'; 3529 printGNUNote<ELFT>(OS, Type, Descriptor, DescriptorSize); 3530 } else if (Name == "FreeBSD") { 3531 OS << getFreeBSDNoteTypeName(Type) << '\n'; 3532 } else if (Name == "AMD") { 3533 OS << getAMDGPUNoteTypeName(Type) << '\n'; 3534 printAMDGPUNote<ELFT>(OS, Type, Descriptor, DescriptorSize); 3535 } else { 3536 OS << "Unknown note type: (" << format_hex(Type, 10) << ')'; 3537 } 3538 OS << '\n'; 3539 3540 P = P + 3 * sizeof(Elf_Word) + alignTo<4>(NameSize) + 3541 alignTo<4>(DescriptorSize); 3542 } 3543 }; 3544 3545 if (IsCore) { 3546 for (const auto &P : unwrapOrError(Obj->program_headers())) 3547 if (P.p_type == PT_NOTE) 3548 process(P.p_offset, P.p_filesz); 3549 } else { 3550 for (const auto &S : unwrapOrError(Obj->sections())) 3551 if (S.sh_type == SHT_NOTE) 3552 process(S.sh_offset, S.sh_size); 3553 } 3554 } 3555 3556 template <class ELFT> void LLVMStyle<ELFT>::printFileHeaders(const ELFO *Obj) { 3557 const Elf_Ehdr *e = Obj->getHeader(); 3558 { 3559 DictScope D(W, "ElfHeader"); 3560 { 3561 DictScope D(W, "Ident"); 3562 W.printBinary("Magic", makeArrayRef(e->e_ident).slice(ELF::EI_MAG0, 4)); 3563 W.printEnum("Class", e->e_ident[ELF::EI_CLASS], makeArrayRef(ElfClass)); 3564 W.printEnum("DataEncoding", e->e_ident[ELF::EI_DATA], 3565 makeArrayRef(ElfDataEncoding)); 3566 W.printNumber("FileVersion", e->e_ident[ELF::EI_VERSION]); 3567 3568 auto OSABI = makeArrayRef(ElfOSABI); 3569 if (e->e_ident[ELF::EI_OSABI] >= ELF::ELFOSABI_FIRST_ARCH && 3570 e->e_ident[ELF::EI_OSABI] <= ELF::ELFOSABI_LAST_ARCH) { 3571 switch (e->e_machine) { 3572 case ELF::EM_AMDGPU: 3573 OSABI = makeArrayRef(AMDGPUElfOSABI); 3574 break; 3575 case ELF::EM_ARM: 3576 OSABI = makeArrayRef(ARMElfOSABI); 3577 break; 3578 case ELF::EM_TI_C6000: 3579 OSABI = makeArrayRef(C6000ElfOSABI); 3580 break; 3581 } 3582 } 3583 W.printEnum("OS/ABI", e->e_ident[ELF::EI_OSABI], OSABI); 3584 W.printNumber("ABIVersion", e->e_ident[ELF::EI_ABIVERSION]); 3585 W.printBinary("Unused", makeArrayRef(e->e_ident).slice(ELF::EI_PAD)); 3586 } 3587 3588 W.printEnum("Type", e->e_type, makeArrayRef(ElfObjectFileType)); 3589 W.printEnum("Machine", e->e_machine, makeArrayRef(ElfMachineType)); 3590 W.printNumber("Version", e->e_version); 3591 W.printHex("Entry", e->e_entry); 3592 W.printHex("ProgramHeaderOffset", e->e_phoff); 3593 W.printHex("SectionHeaderOffset", e->e_shoff); 3594 if (e->e_machine == EM_MIPS) 3595 W.printFlags("Flags", e->e_flags, makeArrayRef(ElfHeaderMipsFlags), 3596 unsigned(ELF::EF_MIPS_ARCH), unsigned(ELF::EF_MIPS_ABI), 3597 unsigned(ELF::EF_MIPS_MACH)); 3598 else if (e->e_machine == EM_AMDGPU) 3599 W.printFlags("Flags", e->e_flags, makeArrayRef(ElfHeaderAMDGPUFlags), 3600 unsigned(ELF::EF_AMDGPU_ARCH)); 3601 else if (e->e_machine == EM_RISCV) 3602 W.printFlags("Flags", e->e_flags, makeArrayRef(ElfHeaderRISCVFlags)); 3603 else 3604 W.printFlags("Flags", e->e_flags); 3605 W.printNumber("HeaderSize", e->e_ehsize); 3606 W.printNumber("ProgramHeaderEntrySize", e->e_phentsize); 3607 W.printNumber("ProgramHeaderCount", e->e_phnum); 3608 W.printNumber("SectionHeaderEntrySize", e->e_shentsize); 3609 W.printNumber("SectionHeaderCount", e->e_shnum); 3610 W.printNumber("StringTableSectionIndex", e->e_shstrndx); 3611 } 3612 } 3613 3614 template <class ELFT> 3615 void LLVMStyle<ELFT>::printGroupSections(const ELFO *Obj) { 3616 DictScope Lists(W, "Groups"); 3617 std::vector<GroupSection> V = getGroups<ELFT>(Obj); 3618 DenseMap<uint64_t, const GroupSection *> Map = mapSectionsToGroups(V); 3619 for (const GroupSection &G : V) { 3620 DictScope D(W, "Group"); 3621 W.printNumber("Name", G.Name, G.ShName); 3622 W.printNumber("Index", G.Index); 3623 W.printHex("Type", getGroupType(G.Type), G.Type); 3624 W.startLine() << "Signature: " << G.Signature << "\n"; 3625 3626 ListScope L(W, "Section(s) in group"); 3627 for (const GroupMember &GM : G.Members) { 3628 const GroupSection *MainGroup = Map[GM.Index]; 3629 if (MainGroup != &G) { 3630 W.flush(); 3631 errs() << "Error: " << GM.Name << " (" << GM.Index 3632 << ") in a group " + G.Name + " (" << G.Index 3633 << ") is already in a group " + MainGroup->Name + " (" 3634 << MainGroup->Index << ")\n"; 3635 errs().flush(); 3636 continue; 3637 } 3638 W.startLine() << GM.Name << " (" << GM.Index << ")\n"; 3639 } 3640 } 3641 3642 if (V.empty()) 3643 W.startLine() << "There are no group sections in the file.\n"; 3644 } 3645 3646 template <class ELFT> void LLVMStyle<ELFT>::printRelocations(const ELFO *Obj) { 3647 ListScope D(W, "Relocations"); 3648 3649 int SectionNumber = -1; 3650 for (const Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 3651 ++SectionNumber; 3652 3653 if (Sec.sh_type != ELF::SHT_REL && Sec.sh_type != ELF::SHT_RELA) 3654 continue; 3655 3656 StringRef Name = unwrapOrError(Obj->getSectionName(&Sec)); 3657 3658 W.startLine() << "Section (" << SectionNumber << ") " << Name << " {\n"; 3659 W.indent(); 3660 3661 printRelocations(&Sec, Obj); 3662 3663 W.unindent(); 3664 W.startLine() << "}\n"; 3665 } 3666 } 3667 3668 template <class ELFT> 3669 void LLVMStyle<ELFT>::printRelocations(const Elf_Shdr *Sec, const ELFO *Obj) { 3670 const Elf_Shdr *SymTab = unwrapOrError(Obj->getSection(Sec->sh_link)); 3671 3672 switch (Sec->sh_type) { 3673 case ELF::SHT_REL: 3674 for (const Elf_Rel &R : unwrapOrError(Obj->rels(Sec))) { 3675 Elf_Rela Rela; 3676 Rela.r_offset = R.r_offset; 3677 Rela.r_info = R.r_info; 3678 Rela.r_addend = 0; 3679 printRelocation(Obj, Rela, SymTab); 3680 } 3681 break; 3682 case ELF::SHT_RELA: 3683 for (const Elf_Rela &R : unwrapOrError(Obj->relas(Sec))) 3684 printRelocation(Obj, R, SymTab); 3685 break; 3686 } 3687 } 3688 3689 template <class ELFT> 3690 void LLVMStyle<ELFT>::printRelocation(const ELFO *Obj, Elf_Rela Rel, 3691 const Elf_Shdr *SymTab) { 3692 SmallString<32> RelocName; 3693 Obj->getRelocationTypeName(Rel.getType(Obj->isMips64EL()), RelocName); 3694 StringRef TargetName; 3695 const Elf_Sym *Sym = unwrapOrError(Obj->getRelocationSymbol(&Rel, SymTab)); 3696 if (Sym && Sym->getType() == ELF::STT_SECTION) { 3697 const Elf_Shdr *Sec = unwrapOrError( 3698 Obj->getSection(Sym, SymTab, this->dumper()->getShndxTable())); 3699 TargetName = unwrapOrError(Obj->getSectionName(Sec)); 3700 } else if (Sym) { 3701 StringRef StrTable = unwrapOrError(Obj->getStringTableForSymtab(*SymTab)); 3702 TargetName = unwrapOrError(Sym->getName(StrTable)); 3703 } 3704 3705 if (opts::ExpandRelocs) { 3706 DictScope Group(W, "Relocation"); 3707 W.printHex("Offset", Rel.r_offset); 3708 W.printNumber("Type", RelocName, (int)Rel.getType(Obj->isMips64EL())); 3709 W.printNumber("Symbol", !TargetName.empty() ? TargetName : "-", 3710 Rel.getSymbol(Obj->isMips64EL())); 3711 W.printHex("Addend", Rel.r_addend); 3712 } else { 3713 raw_ostream &OS = W.startLine(); 3714 OS << W.hex(Rel.r_offset) << " " << RelocName << " " 3715 << (!TargetName.empty() ? TargetName : "-") << " " 3716 << W.hex(Rel.r_addend) << "\n"; 3717 } 3718 } 3719 3720 template <class ELFT> void LLVMStyle<ELFT>::printSections(const ELFO *Obj) { 3721 ListScope SectionsD(W, "Sections"); 3722 3723 int SectionIndex = -1; 3724 for (const Elf_Shdr &Sec : unwrapOrError(Obj->sections())) { 3725 ++SectionIndex; 3726 3727 StringRef Name = unwrapOrError(Obj->getSectionName(&Sec)); 3728 3729 DictScope SectionD(W, "Section"); 3730 W.printNumber("Index", SectionIndex); 3731 W.printNumber("Name", Name, Sec.sh_name); 3732 W.printHex( 3733 "Type", 3734 object::getELFSectionTypeName(Obj->getHeader()->e_machine, Sec.sh_type), 3735 Sec.sh_type); 3736 std::vector<EnumEntry<unsigned>> SectionFlags(std::begin(ElfSectionFlags), 3737 std::end(ElfSectionFlags)); 3738 switch (Obj->getHeader()->e_machine) { 3739 case EM_ARM: 3740 SectionFlags.insert(SectionFlags.end(), std::begin(ElfARMSectionFlags), 3741 std::end(ElfARMSectionFlags)); 3742 break; 3743 case EM_HEXAGON: 3744 SectionFlags.insert(SectionFlags.end(), 3745 std::begin(ElfHexagonSectionFlags), 3746 std::end(ElfHexagonSectionFlags)); 3747 break; 3748 case EM_MIPS: 3749 SectionFlags.insert(SectionFlags.end(), std::begin(ElfMipsSectionFlags), 3750 std::end(ElfMipsSectionFlags)); 3751 break; 3752 case EM_X86_64: 3753 SectionFlags.insert(SectionFlags.end(), std::begin(ElfX86_64SectionFlags), 3754 std::end(ElfX86_64SectionFlags)); 3755 break; 3756 case EM_XCORE: 3757 SectionFlags.insert(SectionFlags.end(), std::begin(ElfXCoreSectionFlags), 3758 std::end(ElfXCoreSectionFlags)); 3759 break; 3760 default: 3761 // Nothing to do. 3762 break; 3763 } 3764 W.printFlags("Flags", Sec.sh_flags, makeArrayRef(SectionFlags)); 3765 W.printHex("Address", Sec.sh_addr); 3766 W.printHex("Offset", Sec.sh_offset); 3767 W.printNumber("Size", Sec.sh_size); 3768 W.printNumber("Link", Sec.sh_link); 3769 W.printNumber("Info", Sec.sh_info); 3770 W.printNumber("AddressAlignment", Sec.sh_addralign); 3771 W.printNumber("EntrySize", Sec.sh_entsize); 3772 3773 if (opts::SectionRelocations) { 3774 ListScope D(W, "Relocations"); 3775 printRelocations(&Sec, Obj); 3776 } 3777 3778 if (opts::SectionSymbols) { 3779 ListScope D(W, "Symbols"); 3780 const Elf_Shdr *Symtab = this->dumper()->getDotSymtabSec(); 3781 StringRef StrTable = unwrapOrError(Obj->getStringTableForSymtab(*Symtab)); 3782 3783 for (const Elf_Sym &Sym : unwrapOrError(Obj->symbols(Symtab))) { 3784 const Elf_Shdr *SymSec = unwrapOrError( 3785 Obj->getSection(&Sym, Symtab, this->dumper()->getShndxTable())); 3786 if (SymSec == &Sec) 3787 printSymbol(Obj, &Sym, unwrapOrError(Obj->symbols(Symtab)).begin(), 3788 StrTable, false); 3789 } 3790 } 3791 3792 if (opts::SectionData && Sec.sh_type != ELF::SHT_NOBITS) { 3793 ArrayRef<uint8_t> Data = unwrapOrError(Obj->getSectionContents(&Sec)); 3794 W.printBinaryBlock("SectionData", 3795 StringRef((const char *)Data.data(), Data.size())); 3796 } 3797 } 3798 } 3799 3800 template <class ELFT> 3801 void LLVMStyle<ELFT>::printSymbol(const ELFO *Obj, const Elf_Sym *Symbol, 3802 const Elf_Sym *First, StringRef StrTable, 3803 bool IsDynamic) { 3804 unsigned SectionIndex = 0; 3805 StringRef SectionName; 3806 getSectionNameIndex(*Obj, Symbol, First, this->dumper()->getShndxTable(), 3807 SectionName, SectionIndex); 3808 std::string FullSymbolName = 3809 this->dumper()->getFullSymbolName(Symbol, StrTable, IsDynamic); 3810 unsigned char SymbolType = Symbol->getType(); 3811 3812 DictScope D(W, "Symbol"); 3813 W.printNumber("Name", FullSymbolName, Symbol->st_name); 3814 W.printHex("Value", Symbol->st_value); 3815 W.printNumber("Size", Symbol->st_size); 3816 W.printEnum("Binding", Symbol->getBinding(), makeArrayRef(ElfSymbolBindings)); 3817 if (Obj->getHeader()->e_machine == ELF::EM_AMDGPU && 3818 SymbolType >= ELF::STT_LOOS && SymbolType < ELF::STT_HIOS) 3819 W.printEnum("Type", SymbolType, makeArrayRef(AMDGPUSymbolTypes)); 3820 else 3821 W.printEnum("Type", SymbolType, makeArrayRef(ElfSymbolTypes)); 3822 if (Symbol->st_other == 0) 3823 // Usually st_other flag is zero. Do not pollute the output 3824 // by flags enumeration in that case. 3825 W.printNumber("Other", 0); 3826 else { 3827 std::vector<EnumEntry<unsigned>> SymOtherFlags(std::begin(ElfSymOtherFlags), 3828 std::end(ElfSymOtherFlags)); 3829 if (Obj->getHeader()->e_machine == EM_MIPS) { 3830 // Someones in their infinite wisdom decided to make STO_MIPS_MIPS16 3831 // flag overlapped with other ST_MIPS_xxx flags. So consider both 3832 // cases separately. 3833 if ((Symbol->st_other & STO_MIPS_MIPS16) == STO_MIPS_MIPS16) 3834 SymOtherFlags.insert(SymOtherFlags.end(), 3835 std::begin(ElfMips16SymOtherFlags), 3836 std::end(ElfMips16SymOtherFlags)); 3837 else 3838 SymOtherFlags.insert(SymOtherFlags.end(), 3839 std::begin(ElfMipsSymOtherFlags), 3840 std::end(ElfMipsSymOtherFlags)); 3841 } 3842 W.printFlags("Other", Symbol->st_other, makeArrayRef(SymOtherFlags), 0x3u); 3843 } 3844 W.printHex("Section", SectionName, SectionIndex); 3845 } 3846 3847 template <class ELFT> void LLVMStyle<ELFT>::printSymbols(const ELFO *Obj) { 3848 ListScope Group(W, "Symbols"); 3849 this->dumper()->printSymbolsHelper(false); 3850 } 3851 3852 template <class ELFT> 3853 void LLVMStyle<ELFT>::printDynamicSymbols(const ELFO *Obj) { 3854 ListScope Group(W, "DynamicSymbols"); 3855 this->dumper()->printSymbolsHelper(true); 3856 } 3857 3858 template <class ELFT> 3859 void LLVMStyle<ELFT>::printDynamicRelocations(const ELFO *Obj) { 3860 const DynRegionInfo &DynRelRegion = this->dumper()->getDynRelRegion(); 3861 const DynRegionInfo &DynRelaRegion = this->dumper()->getDynRelaRegion(); 3862 const DynRegionInfo &DynPLTRelRegion = this->dumper()->getDynPLTRelRegion(); 3863 if (DynRelRegion.Size && DynRelaRegion.Size) 3864 report_fatal_error("There are both REL and RELA dynamic relocations"); 3865 W.startLine() << "Dynamic Relocations {\n"; 3866 W.indent(); 3867 if (DynRelaRegion.Size > 0) 3868 for (const Elf_Rela &Rela : this->dumper()->dyn_relas()) 3869 printDynamicRelocation(Obj, Rela); 3870 else 3871 for (const Elf_Rel &Rel : this->dumper()->dyn_rels()) { 3872 Elf_Rela Rela; 3873 Rela.r_offset = Rel.r_offset; 3874 Rela.r_info = Rel.r_info; 3875 Rela.r_addend = 0; 3876 printDynamicRelocation(Obj, Rela); 3877 } 3878 if (DynPLTRelRegion.EntSize == sizeof(Elf_Rela)) 3879 for (const Elf_Rela &Rela : DynPLTRelRegion.getAsArrayRef<Elf_Rela>()) 3880 printDynamicRelocation(Obj, Rela); 3881 else 3882 for (const Elf_Rel &Rel : DynPLTRelRegion.getAsArrayRef<Elf_Rel>()) { 3883 Elf_Rela Rela; 3884 Rela.r_offset = Rel.r_offset; 3885 Rela.r_info = Rel.r_info; 3886 Rela.r_addend = 0; 3887 printDynamicRelocation(Obj, Rela); 3888 } 3889 W.unindent(); 3890 W.startLine() << "}\n"; 3891 } 3892 3893 template <class ELFT> 3894 void LLVMStyle<ELFT>::printDynamicRelocation(const ELFO *Obj, Elf_Rela Rel) { 3895 SmallString<32> RelocName; 3896 Obj->getRelocationTypeName(Rel.getType(Obj->isMips64EL()), RelocName); 3897 StringRef SymbolName; 3898 uint32_t SymIndex = Rel.getSymbol(Obj->isMips64EL()); 3899 const Elf_Sym *Sym = this->dumper()->dynamic_symbols().begin() + SymIndex; 3900 SymbolName = 3901 unwrapOrError(Sym->getName(this->dumper()->getDynamicStringTable())); 3902 if (opts::ExpandRelocs) { 3903 DictScope Group(W, "Relocation"); 3904 W.printHex("Offset", Rel.r_offset); 3905 W.printNumber("Type", RelocName, (int)Rel.getType(Obj->isMips64EL())); 3906 W.printString("Symbol", !SymbolName.empty() ? SymbolName : "-"); 3907 W.printHex("Addend", Rel.r_addend); 3908 } else { 3909 raw_ostream &OS = W.startLine(); 3910 OS << W.hex(Rel.r_offset) << " " << RelocName << " " 3911 << (!SymbolName.empty() ? SymbolName : "-") << " " 3912 << W.hex(Rel.r_addend) << "\n"; 3913 } 3914 } 3915 3916 template <class ELFT> 3917 void LLVMStyle<ELFT>::printProgramHeaders(const ELFO *Obj) { 3918 ListScope L(W, "ProgramHeaders"); 3919 3920 for (const Elf_Phdr &Phdr : unwrapOrError(Obj->program_headers())) { 3921 DictScope P(W, "ProgramHeader"); 3922 W.printHex("Type", 3923 getElfSegmentType(Obj->getHeader()->e_machine, Phdr.p_type), 3924 Phdr.p_type); 3925 W.printHex("Offset", Phdr.p_offset); 3926 W.printHex("VirtualAddress", Phdr.p_vaddr); 3927 W.printHex("PhysicalAddress", Phdr.p_paddr); 3928 W.printNumber("FileSize", Phdr.p_filesz); 3929 W.printNumber("MemSize", Phdr.p_memsz); 3930 W.printFlags("Flags", Phdr.p_flags, makeArrayRef(ElfSegmentFlags)); 3931 W.printNumber("Alignment", Phdr.p_align); 3932 } 3933 } 3934 3935 template <class ELFT> 3936 void LLVMStyle<ELFT>::printHashHistogram(const ELFFile<ELFT> *Obj) { 3937 W.startLine() << "Hash Histogram not implemented!\n"; 3938 } 3939 3940 template <class ELFT> 3941 void LLVMStyle<ELFT>::printNotes(const ELFFile<ELFT> *Obj) { 3942 W.startLine() << "printNotes not implemented!\n"; 3943 } 3944